"\u9178\u5316\u9084\u5143\u96FB\u4F4D\uFF08\u3055\u3093\u304B\u304B\u3093\u3052\u3093\u3067\u3093\u3044\u3001Redox potential\u3082\u3057\u304F\u306FOxidation-reduction Potential; ORP\uFF09\u3068\u306F\u3001\u3042\u308B\u9178\u5316\u9084\u5143\u53CD\u5FDC\u7CFB\u306B\u304A\u3051\u308B\u96FB\u5B50\u306E\u3084\u308A\u53D6\u308A\u306E\u969B\u306B\u767A\u751F\u3059\u308B\u96FB\u4F4D\uFF08\u6B63\u3057\u304F\u306F\u96FB\u6975\u96FB\u4F4D\uFF09\u306E\u3053\u3068\u3067\u3042\u308B\u3002\u7269\u8CEA\u306E\u96FB\u5B50\u306E\u653E\u51FA\u3057\u3084\u3059\u3055\u3001\u3042\u308B\u3044\u306F\u53D7\u3051\u53D6\u308A\u3084\u3059\u3055\u3092\u5B9A\u91CF\u7684\u306B\u8A55\u4FA1\u3059\u308B\u5C3A\u5EA6\u3067\u3082\u3042\u308B\u3002\u5358\u4F4D\u306F\u30DC\u30EB\u30C8(V)\u3092\u7528\u3044\u3001\u96FB\u6975\u96FB\u4F4D\u306E\u57FA\u6E96\u306B\u306F\u4EE5\u4E0B\u306E\u534A\u53CD\u5FDC\u5F0F\u3067\u8868\u3055\u308C\u308B\u9178\u5316\u9084\u5143\u53CD\u5FDC\u3092\u7528\u3044\u308B\u3002 \u3064\u307E\u308A\u6C34\u7D20\u30AC\u30B9\u5206\u5727\u304C1\u6C17\u5727\u3001\u6C34\u7D20\u30A4\u30AA\u30F3\u306E\u6D3B\u91CF\u304C1\u306E\u3068\u304D\uFF08\u3053\u308C\u3092\u6A19\u6E96\u6C34\u7D20\u96FB\u6975\u3068\u547C\u3076\uFF09\u306E\u96FB\u6975\u96FB\u4F4D\u30920 V\u3068\u5B9A\u7FA9\u3059\u308B\u3002\u3053\u306E\u534A\u53CD\u5FDC\u3092\u57FA\u6E96\u3068\u3057\u3001\u4EFB\u610F\u306E\u9178\u5316\u9084\u5143\u53CD\u5FDC\u306E\u96FB\u6975\u96FB\u4F4D\u304C\u6C7A\u5B9A\u3055\u308C\u308B\u3002\u3059\u306A\u308F\u3061\u3001\u6A19\u6E96\u6C34\u7D20\u96FB\u6975\uFF08SHE; standard hydrogen electrode\u3082\u3057\u304F\u306FNHE; normal hydrogen electrode\uFF09\u3092\u9670\u6975\u53CD\u5FDC\u3001\u96FB\u6975\u96FB\u4F4D\u3092\u6C42\u3081\u305F\u3044\u9178\u5316\u9084\u5143\u53CD\u5FDC\u3092\u967D\u6975\u53CD\u5FDC\u306B\u305D\u308C\u305E\u308C\u4F7F\u3044\u3001\u96FB\u6C60\u3092\u7D44\u307F\u7ACB\u3066\u305F\u3068\u304D\u306E\u96FB\u6C60\u306E\u8D77\u96FB\u529B\u304C\u3001\u6C42\u3081\u305F\u3044\u96FB\u6975\u96FB\u4F4D\u3068\u306A\u308B\u3002\u3053\u306E\u3068\u304D\u3001\u96FB\u6975\u96FB\u4F4D\u3092\u6C42\u3081\u305F\u3044\u9178\u5316\u9084\u5143\u53CD\u5FDC\u306B\u95A2\u4E0E\u3059\u308B\u7269\u8CEA\u306E\u6D3B\u91CF\uFF08\u3042\u308B\u3044\u306F\u5206\u5727\uFF09\u304C\u3059\u3079\u30661\u306E\u5834\u5408\u306E\u96FB\u6975\u96FB\u4F4D\u3092\u7279\u306B\u3001\u6A19\u6E96\u9178\u5316\u9084\u5143\u96FB\u4F4D\uFF08\u3072\u3087\u3046\u3058\u3085\u3093-\uFF09\u3042\u308B\u3044\u306F\u6A19\u6E96\u96FB\u6975\u96FB\u4F4D\u3068\u547C\u3093\u3067\u3044\u308B\u3002 \u306A\u304A\u57FA\u6E96\u3068\u3057\u3066\u7528\u3044\u305F\u6A19\u6E96\u6C34\u7D20\u96FB\u6975(SHE)\u306F\u6C34\u7D20\u30A4\u30AA\u30F3\u306E\u6D3B\u91CF\u304C1\u3059\u306A\u308F\u3061\u6C34\u7D20\u30A4\u30AA\u30F3\u6307\u6570\u304C\u30BC\u30ED(pH 0)\u306E\u74B0\u5883\u3067\u3042\u308A\u751F\u5316\u5B66\u3067\u306F\u3053\u3046\u3057\u305F\u6975\u9650\u72B6\u614B\u306E\u5024\u3067\u306F\u53C2\u8003\u306B\u306A\u3089\u306A\u3044\u305F\u3081\u306BpH 7\u3067\u306E\u96FB\u4F4D\u3092\u6C42\u3081\u308B\u4E2D\u9593\u9178\u5316\u9084\u5143\u96FB\u4F4D\uFF08\u3061\u3085\u3046\u304B\u3093-\u3001\u4E2D\u70B9\u3068\u3082\u8868\u8A18\u3059\u308B\u3053\u3068\u304C\u3042\u308B\uFF09\u3092\u57FA\u6E96\u306B\u7528\u3044\u308B\u3053\u3068\u304C\u3042\u308B\u304C\u3001\u7279\u306B\u65AD\u308B\u3053\u3068\u306A\u3057\u306B\u3053\u308C\u3092\u5358\u306B\u9178\u5316\u9084\u5143\u96FB\u4F4D\u3068\u66F8\u304F\u3053\u3068\u304C\u591A\u3044\u3002\u3044\u305A\u308C\u306B\u305B\u3088\u3001\u5B9F\u969B\u306E\u7814\u7A76\u3067\u306F\u6A19\u6E96\u6C34\u7D20\u96FB\u6975\u306E\u4EE3\u308F\u308A\u306B\u3001\u9280\u2212\u5869\u5316\u9280\u96FB\u6975\u3084\u30AB\u30ED\u30E1\u30EB\u96FB\u6975\u306A\u3069\u5B9F\u7528\u7684\u306A\u57FA\u6E96\u96FB\u6975\u3092\u57FA\u6E96\u306B\u3057\u3066\u9178\u5316\u9084\u5143\u96FB\u4F4D\u3092\u6E2C\u5B9A\u3059\u308B\u3053\u3068\u304C\u983B\u7E41\u306B\u884C\u306A\u308F\u308C\u308B\u3002\u3057\u305F\u304C\u3063\u3066\u3001\u9178\u5316\u9084\u5143\u96FB\u4F4D\u3092\u8868\u8A18\u3059\u308B\u969B\uFF08\u7279\u306B\u6A19\u6E96\u6C34\u7D20\u96FB\u6975\u4EE5\u5916\u306E\u57FA\u6E96\u96FB\u6975\u3092\u7528\u3044\u305F\u5834\u5408\uFF09\u306B\u306F\u3001\u305D\u306E\u65E8\u3092\u5FC5\u305A\u660E\u8A18\u305B\u306D\u3070\u306A\u3089\u306A\u3044\u3002"@ja . . . . . . "El potencial de reducci\u00F3n es como se conoce a la tendencia de las especies qu\u00EDmicas en una reacci\u00F3n redox o de un electrodo en una celda galv\u00E1nica a perder electrones. Se produce por la reacci\u00F3n de dos semiceldas que no est\u00E1n en equilibrio y se mide en milivoltios por comparaci\u00F3n con un electrodo de referencia como el de hidr\u00F3geno. El potenci\u00F3metro solo permite circular una corriente peque\u00F1a, de modo que la concentraci\u00F3n de las dos semiceldas permanece invariable. Si sustituimos el potenci\u00F3metro por un alambre, pasar\u00EDa mucha m\u00E1s corriente, y las concentraciones variar\u00EDan su carga hasta que se alcanzase el equilibrio. En este momento no progresar\u00EDa m\u00E1s la reacci\u00F3n, y el potencial se har\u00EDa cero. Cuando una bater\u00EDa (que es una celda galv\u00E1nica) se agota (V=0) los productos qu\u00EDmicos del interior han llegado al equilibrio qu\u00EDmico, y desde ese momento la bater\u00EDa ha muerto."@es . . "Das Redoxpotential (korrekte Bezeichnung nach DIN 38404-6 \u201ERedox-Spannung\u201C) bezeichnet eine Messgr\u00F6\u00DFe in der Chemie zur Beschreibung von Redoxreaktionen. Bei der Messgr\u00F6\u00DFe handelt es sich um das Reduktions-/Oxidations-Standardpotential eines Stoffes, gemessen unter Standardbedingungen gegen eine Standard-Referenz-Wasserstoffhalbzelle. In biochemischen Systemen ist das Standardredoxpotential definiert beim pH 7,0 gegen eine Standard-Wasserstoffelektrode und bei einem Partialdruck von Wasserstoff von 1 bar."@de . . . "Reduction potential"@en . . "\u039A\u03B1\u03BD\u03BF\u03BD\u03B9\u03BA\u03CC \u03AE \u03C0\u03C1\u03CC\u03C4\u03C5\u03C0\u03BF \u03B4\u03C5\u03BD\u03B1\u03BC\u03B9\u03BA\u03CC \u03BF\u03BE\u03B5\u03B9\u03B4\u03BF\u03B1\u03BD\u03B1\u03B3\u03C9\u03B3\u03AE\u03C2 (\u03C3\u03C5\u03BC\u03B2. \u03950) \u03B5\u03BD\u03CC\u03C2 \u03BF\u03BE\u03B5\u03B9\u03B4\u03BF\u03B1\u03BD\u03B1\u03B3\u03C9\u03B3\u03B9\u03BA\u03BF\u03CD \u03C3\u03C5\u03C3\u03C4\u03AE\u03BC\u03B1\u03C4\u03BF\u03C2 (\u03B7\u03BC\u03B9\u03C3\u03C4\u03BF\u03B9\u03C7\u03B5\u03AF\u03BF\u03C5), \u03B5\u03AF\u03BD\u03B1\u03B9 \u03B7 \u03B4\u03B9\u03B1\u03C6\u03BF\u03C1\u03AC \u03B4\u03C5\u03BD\u03B1\u03BC\u03B9\u03BA\u03BF\u03CD \u03BC\u03B5\u03C4\u03B1\u03BE\u03CD \u03C4\u03BF\u03C5 \u03B4\u03C5\u03BD\u03B1\u03BC\u03B9\u03BA\u03BF\u03CD \u03BF\u03BE\u03B5\u03B9\u03B4\u03BF\u03B1\u03BD\u03B1\u03B3\u03C9\u03B3\u03AE\u03C2 \u03C4\u03BF\u03C5 \u03C3\u03C5\u03C3\u03C4\u03AE\u03BC\u03B1\u03C4\u03BF\u03C2 \u03BA\u03B1\u03B9 \u03C4\u03BF\u03C5 \u03B4\u03C5\u03BD\u03B1\u03BC\u03B9\u03BA\u03BF\u03CD \u03BF\u03BE\u03B5\u03B9\u03B4\u03BF\u03B1\u03BD\u03B1\u03B3\u03C9\u03B3\u03AE\u03C2 \u03C4\u03B7\u03C2 \u03B9\u03C3\u03BF\u03C1\u03C1\u03BF\u03C0\u03AF\u03B1\u03C2 : \u03972 \u21C4 2\u0397+ + 2e, \u03C0\u03BF\u03C5 \u03B8\u03B5\u03C9\u03C1\u03B5\u03AF\u03C4\u03B1\u03B9 \u03C3\u03C5\u03BC\u03B2\u03B1\u03C4\u03B9\u03BA\u03AC \u03BC\u03B7\u03B4\u03AD\u03BD, \u03C3\u03B5 \u03BA\u03B1\u03B8\u03BF\u03C1\u03B9\u03C3\u03BC\u03AD\u03BD\u03B5\u03C2 \u03C3\u03C5\u03BD\u03B8\u03AE\u03BA\u03B5\u03C2 \u03C0\u03BF\u03C5 \u03B5\u03AF\u03BD\u03B1\u03B9: \n* \u03C3\u03C5\u03B3\u03BA\u03B5\u03BD\u03C4\u03C1\u03CE\u03C3\u03B5\u03B9\u03C2 \u03C4\u03C9\u03BD \u03B4\u03B9\u03B1\u03BB\u03C5\u03BC\u03AD\u03BD\u03C9\u03BD \u03C3\u03C9\u03BC\u03AC\u03C4\u03C9\u03BD C = 1 mol/L, \n* \u03C0\u03AF\u03B5\u03C3\u03B7 \u03BA\u03AC\u03B8\u03B5 \u03B1\u03B5\u03C1\u03AF\u03BF\u03C5 1 Atm, \n* \u03B8\u03B5\u03C1\u03BC\u03BF\u03BA\u03C1\u03B1\u03C3\u03AF\u03B1 \u0398 = 25 \u00B0C. \u03A3\u03C4\u03B1 \u03B2\u03B9\u03BF\u03BB\u03BF\u03B3\u03B9\u03BA\u03AC \u03C3\u03C5\u03C3\u03C4\u03AE\u03BC\u03B1\u03C4\u03B1 \u03C4\u03BF \u03950 \u03BF\u03C1\u03AF\u03B6\u03B5\u03C4\u03B1\u03B9 \u03C3\u03B5 pH = 7. \u0395\u03C0\u03B5\u03B9\u03B4\u03AE \u03B7 \u03B1\u03C0\u03B5\u03C5\u03B8\u03B5\u03AF\u03B1\u03C2 \u03BC\u03AD\u03C4\u03C1\u03B7\u03C3\u03B7 \u03C4\u03BF\u03C5 \u03B4\u03C5\u03BD\u03B1\u03BC\u03B9\u03BA\u03BF\u03CD \u03BF\u03BE\u03B5\u03B9\u03B4\u03BF\u03B1\u03BD\u03B1\u03B3\u03C9\u03B3\u03AE\u03C2 \u03B5\u03BD\u03CC\u03C2 \u03C3\u03C5\u03C3\u03C4\u03AE\u03BC\u03B1\u03C4\u03BF\u03C2 \u03B4\u03B5\u03BD \u03B5\u03AF\u03BD\u03B1\u03B9 \u03B4\u03C5\u03BD\u03B1\u03C4\u03AE, \u03BC\u03B5\u03C4\u03C1\u03B9\u03AD\u03C4\u03B1\u03B9 \u03B7 \u03B4\u03B9\u03B1\u03C6\u03BF\u03C1\u03AC \u03B4\u03C5\u03BD\u03B1\u03BC\u03B9\u03BA\u03BF\u03CD \u03BC\u03B5\u03C4\u03B1\u03BE\u03CD, \u03C4\u03BF\u03C5 \u03B4\u03C5\u03BD\u03B1\u03BC\u03B9\u03BA\u03BF\u03CD \u03BF\u03BE\u03B5\u03B9\u03B4\u03BF\u03B1\u03BD\u03B1\u03B3\u03C9\u03B3\u03AE\u03C2 \u03C4\u03BF\u03C5 \u03C3\u03C5\u03C3\u03C4\u03AE\u03BC\u03B1\u03C4\u03BF\u03C2 \u03BA\u03B1\u03B9 \u03C4\u03BF\u03C5 \u03B4\u03C5\u03BD\u03B1\u03BC\u03B9\u03BA\u03BF\u03CD \u03BF\u03BE\u03B5\u03B9\u03B4\u03BF\u03B1\u03BD\u03B1\u03B3\u03C9\u03B3\u03AE\u03C2 \u03C4\u03BF\u03C5 \u03B7\u03BC\u03B9\u03C3\u03C4\u03BF\u03B9\u03C7\u03B5\u03AF\u03BF\u03C5 Pt,H2 / H2 \u03C3\u03C4\u03B9\u03C2 \u03BA\u03B1\u03B8\u03BF\u03C1\u03B9\u03C3\u03BC\u03AD\u03BD\u03B5\u03C2 \u03C3\u03C5\u03BD\u03B8\u03AE\u03BA\u03B5\u03C2."@el . . "Potencja\u0142 redoks (oksydacyjno-redukcyjny, utleniania\u2013redukcji) \u2013 miara w\u0142a\u015Bciwo\u015Bci utleniaj\u0105cych utleniacza lub w\u0142a\u015Bciwo\u015Bci redukuj\u0105cych reduktora w reakcjach redoks, czyli zdolno\u015Bci do oddawania lub przyjmowania elektron\u00F3w przez jony lub cz\u0105steczki. Ilo\u015Bciow\u0105 miar\u0105 tej zdolno\u015Bci jest warto\u015B\u0107 potencja\u0142u (E, Eh [V]) odniesiona do potencja\u0142u standardowej elektrody wodorowej (SEW) lub stopie\u0144 specjalnej skali redoks rH (warto\u015Bci bezwymiarowe zwi\u0105zane z Eh), opracowanej przez Clarka."@pl . "\u9178\u5316\u9084\u5143\u96FB\u4F4D\uFF08\u3055\u3093\u304B\u304B\u3093\u3052\u3093\u3067\u3093\u3044\u3001Redox potential\u3082\u3057\u304F\u306FOxidation-reduction Potential; ORP\uFF09\u3068\u306F\u3001\u3042\u308B\u9178\u5316\u9084\u5143\u53CD\u5FDC\u7CFB\u306B\u304A\u3051\u308B\u96FB\u5B50\u306E\u3084\u308A\u53D6\u308A\u306E\u969B\u306B\u767A\u751F\u3059\u308B\u96FB\u4F4D\uFF08\u6B63\u3057\u304F\u306F\u96FB\u6975\u96FB\u4F4D\uFF09\u306E\u3053\u3068\u3067\u3042\u308B\u3002\u7269\u8CEA\u306E\u96FB\u5B50\u306E\u653E\u51FA\u3057\u3084\u3059\u3055\u3001\u3042\u308B\u3044\u306F\u53D7\u3051\u53D6\u308A\u3084\u3059\u3055\u3092\u5B9A\u91CF\u7684\u306B\u8A55\u4FA1\u3059\u308B\u5C3A\u5EA6\u3067\u3082\u3042\u308B\u3002\u5358\u4F4D\u306F\u30DC\u30EB\u30C8(V)\u3092\u7528\u3044\u3001\u96FB\u6975\u96FB\u4F4D\u306E\u57FA\u6E96\u306B\u306F\u4EE5\u4E0B\u306E\u534A\u53CD\u5FDC\u5F0F\u3067\u8868\u3055\u308C\u308B\u9178\u5316\u9084\u5143\u53CD\u5FDC\u3092\u7528\u3044\u308B\u3002 \u3064\u307E\u308A\u6C34\u7D20\u30AC\u30B9\u5206\u5727\u304C1\u6C17\u5727\u3001\u6C34\u7D20\u30A4\u30AA\u30F3\u306E\u6D3B\u91CF\u304C1\u306E\u3068\u304D\uFF08\u3053\u308C\u3092\u6A19\u6E96\u6C34\u7D20\u96FB\u6975\u3068\u547C\u3076\uFF09\u306E\u96FB\u6975\u96FB\u4F4D\u30920 V\u3068\u5B9A\u7FA9\u3059\u308B\u3002\u3053\u306E\u534A\u53CD\u5FDC\u3092\u57FA\u6E96\u3068\u3057\u3001\u4EFB\u610F\u306E\u9178\u5316\u9084\u5143\u53CD\u5FDC\u306E\u96FB\u6975\u96FB\u4F4D\u304C\u6C7A\u5B9A\u3055\u308C\u308B\u3002\u3059\u306A\u308F\u3061\u3001\u6A19\u6E96\u6C34\u7D20\u96FB\u6975\uFF08SHE; standard hydrogen electrode\u3082\u3057\u304F\u306FNHE; normal hydrogen electrode\uFF09\u3092\u9670\u6975\u53CD\u5FDC\u3001\u96FB\u6975\u96FB\u4F4D\u3092\u6C42\u3081\u305F\u3044\u9178\u5316\u9084\u5143\u53CD\u5FDC\u3092\u967D\u6975\u53CD\u5FDC\u306B\u305D\u308C\u305E\u308C\u4F7F\u3044\u3001\u96FB\u6C60\u3092\u7D44\u307F\u7ACB\u3066\u305F\u3068\u304D\u306E\u96FB\u6C60\u306E\u8D77\u96FB\u529B\u304C\u3001\u6C42\u3081\u305F\u3044\u96FB\u6975\u96FB\u4F4D\u3068\u306A\u308B\u3002\u3053\u306E\u3068\u304D\u3001\u96FB\u6975\u96FB\u4F4D\u3092\u6C42\u3081\u305F\u3044\u9178\u5316\u9084\u5143\u53CD\u5FDC\u306B\u95A2\u4E0E\u3059\u308B\u7269\u8CEA\u306E\u6D3B\u91CF\uFF08\u3042\u308B\u3044\u306F\u5206\u5727\uFF09\u304C\u3059\u3079\u30661\u306E\u5834\u5408\u306E\u96FB\u6975\u96FB\u4F4D\u3092\u7279\u306B\u3001\u6A19\u6E96\u9178\u5316\u9084\u5143\u96FB\u4F4D\uFF08\u3072\u3087\u3046\u3058\u3085\u3093-\uFF09\u3042\u308B\u3044\u306F\u6A19\u6E96\u96FB\u6975\u96FB\u4F4D\u3068\u547C\u3093\u3067\u3044\u308B\u3002"@ja . . "Potencial de reducci\u00F3n"@es . . . . . . "Redoxn\u00ED potenci\u00E1l (tak\u00E9 oxida\u010Dn\u011B-reduk\u010Dn\u00ED potenci\u00E1l i redox potenci\u00E1l) je vyj\u00E1d\u0159en\u00ED m\u00EDry schopnosti redoxn\u00EDho syst\u00E9mu p\u0159ev\u00E9st jednoho z reak\u010Dn\u00EDch partner\u016F do oxidovan\u00E9ho stavu. Redoxn\u00ED potenci\u00E1l vyjad\u0159uje: \n* reduk\u010Dn\u00ED stav syst\u00E9mu v milivoltech \n* nap\u011Bt\u00ED mezi standardn\u00ED vod\u00EDkovou elektrodou a p\u0159\u00EDslu\u0161n\u00FDm oxida\u010Dn\u011B-reduk\u010Dn\u00EDm p\u0159echodem je d\u00E1n vztahem: (pro 25 \u00B0C), kde \n* \u010D\u00EDm v\u00EDce m\u00E1 \u010Dinidlo E>0, t\u00EDm v\u011Bt\u0161\u00EDm je oxida\u010Dn\u00EDm \u010Dinidlem, \u010D\u00EDm m\u00E1 E<0, t\u00EDm je siln\u011Bj\u0161\u00EDm reduk\u010Dn\u00EDm \u010Dinidlem. Redoxn\u00ED potenci\u00E1l se m\u011B\u0159\u00ED jako elektrick\u00E9 nap\u011Bt\u00ED inertn\u00ED elektrody pono\u0159en\u00E9 do roztoku syst\u00E9mu proti srovn\u00E1vac\u00ED elektrod\u011B se zn\u00E1m\u00FDm potenci\u00E1lem. \u010C\u00EDm m\u00E1 kov z\u00E1porn\u011Bj\u0161\u00ED hodnotu redoxn\u00EDho potenci\u00E1lu, t\u00EDm m\u00E1 v\u011Bt\u0161\u00ED schopnost uvol\u0148ovat elektrony."@cs . . . . "Potenziale di riduzione"@it . . "Redoxn\u00ED potenci\u00E1l (tak\u00E9 oxida\u010Dn\u011B-reduk\u010Dn\u00ED potenci\u00E1l i redox potenci\u00E1l) je vyj\u00E1d\u0159en\u00ED m\u00EDry schopnosti redoxn\u00EDho syst\u00E9mu p\u0159ev\u00E9st jednoho z reak\u010Dn\u00EDch partner\u016F do oxidovan\u00E9ho stavu. Redoxn\u00ED potenci\u00E1l vyjad\u0159uje: \n* reduk\u010Dn\u00ED stav syst\u00E9mu v milivoltech \n* nap\u011Bt\u00ED mezi standardn\u00ED vod\u00EDkovou elektrodou a p\u0159\u00EDslu\u0161n\u00FDm oxida\u010Dn\u011B-reduk\u010Dn\u00EDm p\u0159echodem je d\u00E1n vztahem: (pro 25 \u00B0C), kde \n* \u010D\u00EDm v\u00EDce m\u00E1 \u010Dinidlo E>0, t\u00EDm v\u011Bt\u0161\u00EDm je oxida\u010Dn\u00EDm \u010Dinidlem, \u010D\u00EDm m\u00E1 E<0, t\u00EDm je siln\u011Bj\u0161\u00EDm reduk\u010Dn\u00EDm \u010Dinidlem. \u010C\u00EDm m\u00E1 kov z\u00E1porn\u011Bj\u0161\u00ED hodnotu redoxn\u00EDho potenci\u00E1lu, t\u00EDm m\u00E1 v\u011Bt\u0161\u00ED schopnost uvol\u0148ovat elektrony."@cs . . . "\u041E\u043A\u0438\u0441\u043B\u0438\u0442\u0435\u043B\u044C\u043D\u043E-\u0432\u043E\u0441\u0441\u0442\u0430\u043D\u043E\u0432\u0438\u0442\u0435\u043B\u044C\u043D\u044B\u0439 \u043F\u043E\u0442\u0435\u043D\u0446\u0438\u0430\u043B (\u0440\u0435\u0434\u043E\u043A\u0441-\u043F\u043E\u0442\u0435\u043D\u0446\u0438\u0430\u043B \u043E\u0442 \u0430\u043D\u0433\u043B. redox \u2014 reduction-oxidation reaction, Eh \u0438\u043B\u0438 Eh) \u2014 \u043C\u0435\u0440\u0430 \u0441\u043F\u043E\u0441\u043E\u0431\u043D\u043E\u0441\u0442\u0438 \u0445\u0438\u043C\u0438\u0447\u0435\u0441\u043A\u043E\u0433\u043E \u0432\u0435\u0449\u0435\u0441\u0442\u0432\u0430 \u043F\u0440\u0438\u0441\u043E\u0435\u0434\u0438\u043D\u044F\u0442\u044C \u044D\u043B\u0435\u043A\u0442\u0440\u043E\u043D\u044B (\u0432\u043E\u0441\u0441\u0442\u0430\u043D\u0430\u0432\u043B\u0438\u0432\u0430\u0442\u044C\u0441\u044F). \u041E\u043A\u0438\u0441\u043B\u0438\u0442\u0435\u043B\u044C\u043D\u043E-\u0432\u043E\u0441\u0441\u0442\u0430\u043D\u043E\u0432\u0438\u0442\u0435\u043B\u044C\u043D\u044B\u0439 \u043F\u043E\u0442\u0435\u043D\u0446\u0438\u0430\u043B \u0432\u044B\u0440\u0430\u0436\u0430\u044E\u0442 \u0432 \u043C\u0438\u043B\u043B\u0438\u0432\u043E\u043B\u044C\u0442\u0430\u0445 (\u043C\u0412). \u041F\u0440\u0438\u043C\u0435\u0440\u043E\u043C \u043E\u043A\u0438\u0441\u043B\u0438\u0442\u0435\u043B\u044C\u043D\u043E-\u0432\u043E\u0441\u0441\u0442\u0430\u043D\u043E\u0432\u0438\u0442\u0435\u043B\u044C\u043D\u043E\u0433\u043E \u044D\u043B\u0435\u043A\u0442\u0440\u043E\u0434\u0430 \u044F\u0432\u043B\u044F\u044E\u0442\u0441\u044F: Pt/Fe3+, Fe2+."@ru . . . . . . . . "1122877026"^^ . . . . . . "Redox potential (also known as oxidation / reduction potential, ORP, pe, , or ) is a measure of the tendency of a chemical species to acquire electrons from or lose electrons to an electrode and thereby be reduced or oxidised respectively. Redox potential is expressed in volts (V). Each species has its own intrinsic redox potential; for example, the more positive the reduction potential (reduction potential is more often used due to general formalism in electrochemistry), the greater the species' affinity for electrons and tendency to be reduced."@en . . . . "Potentiel d'oxydor\u00E9duction"@fr . . "\u041E\u043A\u0438\u0441\u043D\u043E-\u0432\u0456\u0434\u043D\u043E\u0432\u043D\u0438\u0439 \u043F\u043E\u0442\u0435\u043D\u0446\u0456\u0430\u043B"@uk . . . . . "El potencial de reducci\u00F3n es como se conoce a la tendencia de las especies qu\u00EDmicas en una reacci\u00F3n redox o de un electrodo en una celda galv\u00E1nica a perder electrones. Se produce por la reacci\u00F3n de dos semiceldas que no est\u00E1n en equilibrio y se mide en milivoltios por comparaci\u00F3n con un electrodo de referencia como el de hidr\u00F3geno. El potenci\u00F3metro solo permite circular una corriente peque\u00F1a, de modo que la concentraci\u00F3n de las dos semiceldas permanece invariable. Si sustituimos el potenci\u00F3metro por un alambre, pasar\u00EDa mucha m\u00E1s corriente, y las concentraciones variar\u00EDan su carga hasta que se alcanzase el equilibrio. En este momento no progresar\u00EDa m\u00E1s la reacci\u00F3n, y el potencial se har\u00EDa cero. Cuando una bater\u00EDa (que es una celda galv\u00E1nica) se agota (V=0) los productos qu\u00EDmicos del interi"@es . . . . "Potensial reduksi"@in . . . "Potencial eletroqu\u00EDmico, potencial de redu\u00E7\u00E3o, potencial redox, potencial de oxida\u00E7\u00E3o/redu\u00E7\u00E3o, potencial de eletrodo ou ORP (Oxidation Reduction Potential) \u00E9 a espontaneidade, ou a tend\u00EAncia de uma esp\u00E9cie qu\u00EDmica adquirir el\u00E9trons e, desse modo, ser reduzida. Cada esp\u00E9cie tem seu potencial intr\u00EDnseco de redu\u00E7\u00E3o. Em bioqu\u00EDmica, \u00E9, frequentemente, referido como potencial de meia onda por corresponder ao ponto em que metade das esp\u00E9cies se encontra reduzida."@pt . . . . . . . "\u041E\u043A\u0438\u0301\u0441\u043D\u043E-\u0432\u0456\u0434\u043D\u043E\u0301\u0432\u043D\u0438\u0439 \u043F\u043E\u0442\u0435\u043D\u0446\u0456\u0430\u0301\u043B, \u0440\u0435\u0434\u043E\u0301\u043A\u0441-\u043F\u043E\u0442\u0435\u043D\u0446\u0456\u0430\u0301\u043B, (\u0440\u043E\u0441. \u043E\u043A\u0438\u0441\u043B\u0438\u0442\u0435\u043B\u044C\u043D\u043E-\u0432\u043E\u0441\u0441\u0442\u0430\u043D\u043E\u0432\u0438\u0442\u0435\u043B\u044C\u043D\u044B\u0439 \u043F\u043E\u0442\u0435\u043D\u0446\u0438\u0430\u043B, \u0430\u043D\u0433\u043B. redox potential, \u043D\u0456\u043C. Redoxpotential n) \u2014 \u043C\u0456\u0440\u0430 \u043E\u043A\u0438\u0441\u043D\u044E\u0432\u0430\u043B\u044C\u043D\u043E\u0457 \u0430\u0431\u043E \u0432\u0456\u0434\u043D\u043E\u0432\u043B\u044E\u0432\u0430\u043B\u044C\u043D\u043E\u0457 \u0437\u0434\u0430\u0442\u043D\u043E\u0441\u0442\u0456 \u0441\u0435\u0440\u0435\u0434\u043E\u0432\u0438\u0449\u0430 \u0415h, \u044F\u043A\u0430 \u0437\u0430\u043B\u0435\u0436\u0438\u0442\u044C \u0432\u0456\u0434 \u0437\u043C\u0456\u043D\u0438 \u0432 \u0440\u043E\u0437\u0447\u0438\u043D\u0456 \u043A\u043E\u043D\u0446\u0435\u043D\u0442\u0440\u0430\u0446\u0456\u0439 \u0439\u043E\u043D\u0456\u0432 \u041D+ \u0442\u0430 \u041E\u041D\u2212. \u0412\u0438\u043C\u0456\u0440\u044E\u0454\u0442\u044C\u0441\u044F \u0443 \u043C\u0456\u043B\u0456\u0432\u043E\u043B\u044C\u0442\u0430\u0445. \u0412\u0456\u0434\u0434\u0437\u0435\u0440\u043A\u0430\u043B\u044E\u0454 \u0437\u0434\u0430\u0442\u043D\u0456\u0441\u0442\u044C \u043F\u0440\u0438\u0454\u0434\u043D\u0430\u043D\u043D\u044F \u0430\u0431\u043E \u0432\u0456\u0434\u0434\u0430\u0447\u0456 \u0435\u043B\u0435\u043A\u0442\u0440\u043E\u043D\u0456\u0432 \u0432 \u043E\u043A\u0438\u0441\u043D\u043E-\u0432\u0456\u0434\u043D\u043E\u0432\u043D\u0438\u0445 \u0440\u0435\u0430\u043A\u0446\u0456\u044F\u0445."@uk . . . . "Potencja\u0142 redoks"@pl . . . "Potencial eletroqu\u00EDmico, potencial de redu\u00E7\u00E3o, potencial redox, potencial de oxida\u00E7\u00E3o/redu\u00E7\u00E3o, potencial de eletrodo ou ORP (Oxidation Reduction Potential) \u00E9 a espontaneidade, ou a tend\u00EAncia de uma esp\u00E9cie qu\u00EDmica adquirir el\u00E9trons e, desse modo, ser reduzida. Cada esp\u00E9cie tem seu potencial intr\u00EDnseco de redu\u00E7\u00E3o. Em bioqu\u00EDmica, \u00E9, frequentemente, referido como potencial de meia onda por corresponder ao ponto em que metade das esp\u00E9cies se encontra reduzida. Para se obter potenciais de eletrodos, se atribui um valor arbitr\u00E1rio a um deles, que se toma como refer\u00EAncia. Os demais s\u00E3o medidos verificando-se a diferen\u00E7a de potencial que adquirem quando ligados ao eletrodo de refer\u00EAncia. O sinal depende do sentido em que ocorre a rea\u00E7\u00E3o do eletrodo. Por conven\u00E7\u00E3o, os potenciais de eletrodo se referem a semirrea\u00E7\u00E3o de redu\u00E7\u00E3o. O potencial \u00E9 considerado positivo quando a rea\u00E7\u00E3o que ocorre no eletrodo (em rela\u00E7\u00E3o ao de refer\u00EAncia) \u00E9 a redu\u00E7\u00E3o, e negativo quando \u00E9 a oxida\u00E7\u00E3o. O eletrodo mais comum que se toma como refer\u00EAncia para tabular os potenciais de eletrodo \u00E9 o par H+(aqu., 1M)/H2 (1 atm), que se denomina eletrodo de refer\u00EAncia ou normal de hidrog\u00EAnio, o qual possui valor igual a 0 Volt."@pt . . . "\u8FD8\u539F\u7535\u4F4D"@zh . "Redox potential (also known as oxidation / reduction potential, ORP, pe, , or ) is a measure of the tendency of a chemical species to acquire electrons from or lose electrons to an electrode and thereby be reduced or oxidised respectively. Redox potential is expressed in volts (V). Each species has its own intrinsic redox potential; for example, the more positive the reduction potential (reduction potential is more often used due to general formalism in electrochemistry), the greater the species' affinity for electrons and tendency to be reduced."@en . . "\u8FD8\u539F\u7535\u4F4D\u53C8\u79F0\u6C27\u5316\u8FD8\u539F\u7535\u4F4D\uFF08\u82F1\u8A9E\uFF1ARedox potential\uFF09\uFF0C\u6307\u7684\u662F\u7535\u6D3B\u6027\u7269\u8D28\u53D1\u751F\u7535\u8FD8\u539F\u53CD\u5E94\u65F6\u7684\u3002\u8FD8\u539F\u7535\u4F4D\u7684\u5355\u4F4D\u662F\u4F0F\u7279\u6216\u6BEB\u4F0F\u3002\u6BCF\u79CD\u7535\u6D3B\u6027\u7269\u8D28\u6709\u5176\u7279\u5B9A\u7684\u8FD8\u539F\u7535\u4F4D\uFF0C\u8FD8\u539F\u7535\u4F4D\u503C\u8D8A\u6B63\uFF0C\u4EE3\u8868\u8BE5\u7269\u8D28\u5177\u6709\u66F4\u5F3A\u7684\u5F97\u7535\u5B50\u80FD\u529B\uFF0C\u5373\u6C27\u5316\u6027\u3002\u6C27\u5316\u8FD8\u539F\u7535\u4F4D\u4E5F\u53EF\u4EE5\u53CD\u6620\u6C34\u7684\u6297\u83CC\u80FD\u529B"@zh . "Redoxpotential"@sv . "2234192"^^ . . "\u041E\u043A\u0438\u0441\u043B\u0438\u0442\u0435\u043B\u044C\u043D\u043E-\u0432\u043E\u0441\u0441\u0442\u0430\u043D\u043E\u0432\u0438\u0442\u0435\u043B\u044C\u043D\u044B\u0439 \u043F\u043E\u0442\u0435\u043D\u0446\u0438\u0430\u043B"@ru . "El Potencial d'el\u00E8ctrode , Potencial de reducci\u00F3 o potencial REDOX com se'l coneix \u00E9s el que produeix una cel\u00B7la galv\u00E0nica per la reacci\u00F3 d'una cel\u00B7la que no est\u00E0 en equilibri. El potenci\u00F2metre nom\u00E9s permet circular un corrent petit, de manera que la concentraci\u00F3 de les dues semicel\u00B7les roman invariable. Si substitu\u00EFm el potenci\u00F2metre per un filferro, passar\u00E0 molt m\u00E9s corrent, i les concentracions variaran fins que s'assoleixi l'equilibri. En aquest moment no progressar\u00E0 m\u00E9s la reacci\u00F3, i el potencial \" E \" esdevindr\u00E0 zero. Quan una bateria (que \u00E9s una cel\u00B7la galv\u00E0nica) s'esgota (V = 0) els productes qu\u00EDmics de l'interior han arribat a l'equilibri, i des d'aquest moment la bateria ha <>."@ca . . . . . . . . . . "\u062C\u0647\u062F \u0627\u0644\u0627\u062E\u062A\u0632\u0627\u0644 \u0641\u064A \u0627\u0644\u0643\u064A\u0645\u064A\u0627\u0621 \u0627\u0644\u0643\u0647\u0631\u0628\u064A\u0629 \u0644\u0646\u0638\u0627\u0645 \u0643\u0647\u0631\u0643\u064A\u0645\u064A\u0627\u0626\u064A \u0647\u0648 \u062C\u0647\u062F \u0627\u062E\u062A\u0632\u0627\u0644 \u0623\u062D\u062F \u0627\u0644\u0645\u0648\u0627\u062F \u0645\u0642\u0627\u0633\u0627 \u0641\u064A \u0627\u0644\u0638\u0631\u0648\u0641 \u0627\u0644\u0642\u064A\u0627\u0633\u064A\u0629 \u0628\u0627\u0644\u0645\u0642\u0627\u0631\u0646\u0629 \u0628\u0646\u0635\u0641 \u062E\u0644\u064A\u0629 \u0642\u064A\u0627\u0633\u064A\u0629. \u0641\u064A \u0627\u0644\u0623\u0646\u0638\u0645\u0629 \u0627\u0644\u062D\u064A\u0648\u064A\u0629 (\u0627\u0644\u0628\u064A\u0648\u0644\u0648\u062C\u064A\u0629) \u064A\u0639\u0631\u0641 \u062C\u0647\u062F \u0627\u0644\u0627\u062E\u062A\u0632\u0627\u0644 \u0627\u0644\u0642\u064A\u0627\u0633\u064A \u0639\u0646\u062F \u0642\u064A\u0645\u0629 pH= 7,0 \u0648\u064A\u0642\u0627\u0633 \u0628\u0627\u0644\u0645\u0642\u0627\u0631\u0646\u0629 \u0628 \u0642\u0637\u0628 \u0642\u064A\u0627\u0633\u064A \u0644\u0644\u0647\u064A\u062F\u0631\u0648\u062C\u064A\u0646 \u0648\u0636\u063A\u0637 \u062C\u0632\u0626\u064A \u0644\u0644\u0647\u064A\u062F\u0631\u0648\u062C\u064A\u0646 \u0642\u062F\u0631\u0647 1 \u0636\u063A\u0637 \u062C\u0648\u064A. (\u0627\u0644\u0642\u064A\u0645\u0629 pH= 7,0 \u062A\u0633\u0645\u0649 \u0628\u0627\u0644\u0639\u0631\u0628\u064A\u0629 \u0623\u0633 \u0647\u064A\u062F\u0631\u0648\u062C\u064A\u0646\u064A \u0623\u0648 \u0628\u0627\u0647\u0627\u0621 \u060C \u0648\u0639\u0646\u062F\u0645\u0627 \u064A\u0643\u0648\u0646 \u00AB\u0627\u0644\u0623\u0633 \u0627\u0644\u0647\u064A\u062F\u0631\u0648\u062C\u064A\u0646\u064A\u00BB \u0645\u0633\u0627\u0648\u064A\u0627 7 \u064A\u0643\u0648\u0646 \u0627\u0644\u0645\u0627\u0621 \u0646\u0642\u064A\u0627 \u0645\u062A\u0639\u0627\u062F\u0644\u0627\u060C \u0623\u064A \u0644\u0627 \u062D\u0645\u0636\u064A\u060C \u0648\u0644\u0627 \u0642\u0644\u0648\u064A)."@ar . . . "Il potenziale di riduzione (anche conosciuto come potenziale redox e indicato con Eh) \u00E8 una misura della tendenza di una specie chimica ad acquisire elettroni, cio\u00E8 a essere ridotta. Maggiore \u00E8 il potenziale di riduzione, maggiore \u00E8 la tendenza ad acquisire elettroni (comportarsi da catodo nelle pile) ossia maggiore \u00E8 il potenziale di riduzione maggiore \u00E8 il carattere ossidante. Nell'ambito del Sistema internazionale di unit\u00E0 di misura, il potenziale di riduzione \u00E8 espresso in volt (V). Il potenziale di riduzione \u00E8 una propriet\u00E0 intrinseca della specie chimica considerata; pi\u00F9 positivo \u00E8 tale valore, maggiore \u00E8 l'affinit\u00E0 elettronica della specie e maggiore \u00E8 la sua tendenza ad essere ridotta."@it . . "Potensial reduksi (dikenal pula sebagai potensial redoks, potensial oksidasi/reduksi, ORP, pe, \u03B5, atau ) adalah ukuran kecenderungan suatu spesi kimia untuk memperoleh elektron dan karenanya dapat tereduksi. Potensial reduksi diukur dalam satuan volt (V), atau milivolt (mV). Setiap spesi memiliki potensial reduksi intrinsiknya masing-masing; semakin positif potensial reduksinya, semakin besar afinitas spesi terhadap elektron dan kecenderungannya untuk tereduksi. Potensial reduksi merupakan pengukuran umum bagi kualitas air."@in . . . "Redoxpotential (reduktion-oxidation potential) \u00E4r en elektrisk potential (m\u00E4tt i volt) som m\u00E4ter en substans affinitet per elektroner (det vill s\u00E4ga energi som frig\u00F6rs n\u00E4r f\u00F6reningen bildas eller splittras dividerat per elektron). Om ett \u00E4mne oxideras s\u00E5 finns ett \u00E4mne som ocks\u00E5 reduceras, och vice versa, d\u00E4rav namnet. N\u00E4r elektroner r\u00F6r sig \"ned\u00E5t\" i en redoxreaktion, frig\u00F6rs energi (Gibbs fria energi) som brukar betecknas (-\u0394G), d\u00E4r G \u00E4r fri energi. Man beh\u00F6ver tillf\u00F6ra motsvarande energi (+\u0394G) f\u00F6r att v\u00E4nda reaktionen s\u00E5 att elektronerna r\u00F6r sig \"upp\u00E5t\"."@sv . . . . . . . . . . "\u039A\u03B1\u03BD\u03BF\u03BD\u03B9\u03BA\u03CC \u03B4\u03C5\u03BD\u03B1\u03BC\u03B9\u03BA\u03CC \u03BF\u03BE\u03B5\u03B9\u03B4\u03BF\u03B1\u03BD\u03B1\u03B3\u03C9\u03B3\u03AE\u03C2"@el . "Potencial de redu\u00E7\u00E3o"@pt . . . . . . . . . . . . "Le potentiel d'oxydor\u00E9duction, ou potentiel redox, est une grandeur empirique exprim\u00E9e en volts et g\u00E9n\u00E9ralement not\u00E9e (ou, pour le potentiel redox standard, E0(Mn+/M) o\u00F9 M d\u00E9signe un m\u00E9tal quelconque). Ce potentiel est exprim\u00E9 par rapport \u00E0 une r\u00E9f\u00E9rence, souvent mesur\u00E9e par une \u00E9lectrode normale \u00E0 hydrog\u00E8ne (ENH, d'o\u00F9 l'unit\u00E9 V/ENH rencontr\u00E9e dans certains ouvrages). Cette mesure est appliqu\u00E9e aux couples d'oxydor\u00E9duction pour pr\u00E9voir la r\u00E9activit\u00E9 des esp\u00E8ces chimiques entre elles. Le potentiel standard E0 est mesur\u00E9 par rapport au couple proton/dihydrog\u00E8ne (H+/H2), de potentiel standard nul par convention."@fr . . "Redoxn\u00ED potenci\u00E1l"@cs . "2"^^ . . . . . . "\u062C\u0647\u062F \u0627\u0644\u0627\u062E\u062A\u0632\u0627\u0644 \u0641\u064A \u0627\u0644\u0643\u064A\u0645\u064A\u0627\u0621 \u0627\u0644\u0643\u0647\u0631\u0628\u064A\u0629 \u0644\u0646\u0638\u0627\u0645 \u0643\u0647\u0631\u0643\u064A\u0645\u064A\u0627\u0626\u064A \u0647\u0648 \u062C\u0647\u062F \u0627\u062E\u062A\u0632\u0627\u0644 \u0623\u062D\u062F \u0627\u0644\u0645\u0648\u0627\u062F \u0645\u0642\u0627\u0633\u0627 \u0641\u064A \u0627\u0644\u0638\u0631\u0648\u0641 \u0627\u0644\u0642\u064A\u0627\u0633\u064A\u0629 \u0628\u0627\u0644\u0645\u0642\u0627\u0631\u0646\u0629 \u0628\u0646\u0635\u0641 \u062E\u0644\u064A\u0629 \u0642\u064A\u0627\u0633\u064A\u0629. \u0641\u064A \u0627\u0644\u0623\u0646\u0638\u0645\u0629 \u0627\u0644\u062D\u064A\u0648\u064A\u0629 (\u0627\u0644\u0628\u064A\u0648\u0644\u0648\u062C\u064A\u0629) \u064A\u0639\u0631\u0641 \u062C\u0647\u062F \u0627\u0644\u0627\u062E\u062A\u0632\u0627\u0644 \u0627\u0644\u0642\u064A\u0627\u0633\u064A \u0639\u0646\u062F \u0642\u064A\u0645\u0629 pH= 7,0 \u0648\u064A\u0642\u0627\u0633 \u0628\u0627\u0644\u0645\u0642\u0627\u0631\u0646\u0629 \u0628 \u0642\u0637\u0628 \u0642\u064A\u0627\u0633\u064A \u0644\u0644\u0647\u064A\u062F\u0631\u0648\u062C\u064A\u0646 \u0648\u0636\u063A\u0637 \u062C\u0632\u0626\u064A \u0644\u0644\u0647\u064A\u062F\u0631\u0648\u062C\u064A\u0646 \u0642\u062F\u0631\u0647 1 \u0636\u063A\u0637 \u062C\u0648\u064A. (\u0627\u0644\u0642\u064A\u0645\u0629 pH= 7,0 \u062A\u0633\u0645\u0649 \u0628\u0627\u0644\u0639\u0631\u0628\u064A\u0629 \u0623\u0633 \u0647\u064A\u062F\u0631\u0648\u062C\u064A\u0646\u064A \u0623\u0648 \u0628\u0627\u0647\u0627\u0621 \u060C \u0648\u0639\u0646\u062F\u0645\u0627 \u064A\u0643\u0648\u0646 \u00AB\u0627\u0644\u0623\u0633 \u0627\u0644\u0647\u064A\u062F\u0631\u0648\u062C\u064A\u0646\u064A\u00BB \u0645\u0633\u0627\u0648\u064A\u0627 7 \u064A\u0643\u0648\u0646 \u0627\u0644\u0645\u0627\u0621 \u0646\u0642\u064A\u0627 \u0645\u062A\u0639\u0627\u062F\u0644\u0627\u060C \u0623\u064A \u0644\u0627 \u062D\u0645\u0636\u064A\u060C \u0648\u0644\u0627 \u0642\u0644\u0648\u064A)."@ar . . "\u041E\u043A\u0438\u0301\u0441\u043D\u043E-\u0432\u0456\u0434\u043D\u043E\u0301\u0432\u043D\u0438\u0439 \u043F\u043E\u0442\u0435\u043D\u0446\u0456\u0430\u0301\u043B, \u0440\u0435\u0434\u043E\u0301\u043A\u0441-\u043F\u043E\u0442\u0435\u043D\u0446\u0456\u0430\u0301\u043B, (\u0440\u043E\u0441. \u043E\u043A\u0438\u0441\u043B\u0438\u0442\u0435\u043B\u044C\u043D\u043E-\u0432\u043E\u0441\u0441\u0442\u0430\u043D\u043E\u0432\u0438\u0442\u0435\u043B\u044C\u043D\u044B\u0439 \u043F\u043E\u0442\u0435\u043D\u0446\u0438\u0430\u043B, \u0430\u043D\u0433\u043B. redox potential, \u043D\u0456\u043C. Redoxpotential n) \u2014 \u043C\u0456\u0440\u0430 \u043E\u043A\u0438\u0441\u043D\u044E\u0432\u0430\u043B\u044C\u043D\u043E\u0457 \u0430\u0431\u043E \u0432\u0456\u0434\u043D\u043E\u0432\u043B\u044E\u0432\u0430\u043B\u044C\u043D\u043E\u0457 \u0437\u0434\u0430\u0442\u043D\u043E\u0441\u0442\u0456 \u0441\u0435\u0440\u0435\u0434\u043E\u0432\u0438\u0449\u0430 \u0415h, \u044F\u043A\u0430 \u0437\u0430\u043B\u0435\u0436\u0438\u0442\u044C \u0432\u0456\u0434 \u0437\u043C\u0456\u043D\u0438 \u0432 \u0440\u043E\u0437\u0447\u0438\u043D\u0456 \u043A\u043E\u043D\u0446\u0435\u043D\u0442\u0440\u0430\u0446\u0456\u0439 \u0439\u043E\u043D\u0456\u0432 \u041D+ \u0442\u0430 \u041E\u041D\u2212. \u0412\u0438\u043C\u0456\u0440\u044E\u0454\u0442\u044C\u0441\u044F \u0443 \u043C\u0456\u043B\u0456\u0432\u043E\u043B\u044C\u0442\u0430\u0445. \u0412\u0456\u0434\u0434\u0437\u0435\u0440\u043A\u0430\u043B\u044E\u0454 \u0437\u0434\u0430\u0442\u043D\u0456\u0441\u0442\u044C \u043F\u0440\u0438\u0454\u0434\u043D\u0430\u043D\u043D\u044F \u0430\u0431\u043E \u0432\u0456\u0434\u0434\u0430\u0447\u0456 \u0435\u043B\u0435\u043A\u0442\u0440\u043E\u043D\u0456\u0432 \u0432 \u043E\u043A\u0438\u0441\u043D\u043E-\u0432\u0456\u0434\u043D\u043E\u0432\u043D\u0438\u0445 \u0440\u0435\u0430\u043A\u0446\u0456\u044F\u0445."@uk . "Redoxpotential"@de . . "24146"^^ . . . "\u8FD8\u539F\u7535\u4F4D\u53C8\u79F0\u6C27\u5316\u8FD8\u539F\u7535\u4F4D\uFF08\u82F1\u8A9E\uFF1ARedox potential\uFF09\uFF0C\u6307\u7684\u662F\u7535\u6D3B\u6027\u7269\u8D28\u53D1\u751F\u7535\u8FD8\u539F\u53CD\u5E94\u65F6\u7684\u3002\u8FD8\u539F\u7535\u4F4D\u7684\u5355\u4F4D\u662F\u4F0F\u7279\u6216\u6BEB\u4F0F\u3002\u6BCF\u79CD\u7535\u6D3B\u6027\u7269\u8D28\u6709\u5176\u7279\u5B9A\u7684\u8FD8\u539F\u7535\u4F4D\uFF0C\u8FD8\u539F\u7535\u4F4D\u503C\u8D8A\u6B63\uFF0C\u4EE3\u8868\u8BE5\u7269\u8D28\u5177\u6709\u66F4\u5F3A\u7684\u5F97\u7535\u5B50\u80FD\u529B\uFF0C\u5373\u6C27\u5316\u6027\u3002\u6C27\u5316\u8FD8\u539F\u7535\u4F4D\u4E5F\u53EF\u4EE5\u53CD\u6620\u6C34\u7684\u6297\u83CC\u80FD\u529B"@zh . . . "Das Redoxpotential (korrekte Bezeichnung nach DIN 38404-6 \u201ERedox-Spannung\u201C) bezeichnet eine Messgr\u00F6\u00DFe in der Chemie zur Beschreibung von Redoxreaktionen. Bei der Messgr\u00F6\u00DFe handelt es sich um das Reduktions-/Oxidations-Standardpotential eines Stoffes, gemessen unter Standardbedingungen gegen eine Standard-Referenz-Wasserstoffhalbzelle. In biochemischen Systemen ist das Standardredoxpotential definiert beim pH 7,0 gegen eine Standard-Wasserstoffelektrode und bei einem Partialdruck von Wasserstoff von 1 bar."@de . . "Le potentiel d'oxydor\u00E9duction, ou potentiel redox, est une grandeur empirique exprim\u00E9e en volts et g\u00E9n\u00E9ralement not\u00E9e (ou, pour le potentiel redox standard, E0(Mn+/M) o\u00F9 M d\u00E9signe un m\u00E9tal quelconque). Ce potentiel est exprim\u00E9 par rapport \u00E0 une r\u00E9f\u00E9rence, souvent mesur\u00E9e par une \u00E9lectrode normale \u00E0 hydrog\u00E8ne (ENH, d'o\u00F9 l'unit\u00E9 V/ENH rencontr\u00E9e dans certains ouvrages). Cette mesure est appliqu\u00E9e aux couples d'oxydor\u00E9duction pour pr\u00E9voir la r\u00E9activit\u00E9 des esp\u00E8ces chimiques entre elles. Le potentiel standard E0 est mesur\u00E9 par rapport au couple proton/dihydrog\u00E8ne (H+/H2), de potentiel standard nul par convention."@fr . . "\u062C\u0647\u062F \u0627\u062E\u062A\u0632\u0627\u0644"@ar . . . . . "Potencja\u0142 redoks (oksydacyjno-redukcyjny, utleniania\u2013redukcji) \u2013 miara w\u0142a\u015Bciwo\u015Bci utleniaj\u0105cych utleniacza lub w\u0142a\u015Bciwo\u015Bci redukuj\u0105cych reduktora w reakcjach redoks, czyli zdolno\u015Bci do oddawania lub przyjmowania elektron\u00F3w przez jony lub cz\u0105steczki. Ilo\u015Bciow\u0105 miar\u0105 tej zdolno\u015Bci jest warto\u015B\u0107 potencja\u0142u (E, Eh [V]) odniesiona do potencja\u0142u standardowej elektrody wodorowej (SEW) lub stopie\u0144 specjalnej skali redoks rH (warto\u015Bci bezwymiarowe zwi\u0105zane z Eh), opracowanej przez Clarka."@pl . . . . . . . . . . . . . . . . . . . . . "Il potenziale di riduzione (anche conosciuto come potenziale redox e indicato con Eh) \u00E8 una misura della tendenza di una specie chimica ad acquisire elettroni, cio\u00E8 a essere ridotta. Maggiore \u00E8 il potenziale di riduzione, maggiore \u00E8 la tendenza ad acquisire elettroni (comportarsi da catodo nelle pile) ossia maggiore \u00E8 il potenziale di riduzione maggiore \u00E8 il carattere ossidante. Nell'ambito del Sistema internazionale di unit\u00E0 di misura, il potenziale di riduzione \u00E8 espresso in volt (V). Il potenziale di riduzione \u00E8 una propriet\u00E0 intrinseca della specie chimica considerata; pi\u00F9 positivo \u00E8 tale valore, maggiore \u00E8 l'affinit\u00E0 elettronica della specie e maggiore \u00E8 la sua tendenza ad essere ridotta."@it . "Potencial de reducci\u00F3"@ca . . . "El Potencial d'el\u00E8ctrode , Potencial de reducci\u00F3 o potencial REDOX com se'l coneix \u00E9s el que produeix una cel\u00B7la galv\u00E0nica per la reacci\u00F3 d'una cel\u00B7la que no est\u00E0 en equilibri. El potenci\u00F2metre nom\u00E9s permet circular un corrent petit, de manera que la concentraci\u00F3 de les dues semicel\u00B7les roman invariable. Si substitu\u00EFm el potenci\u00F2metre per un filferro, passar\u00E0 molt m\u00E9s corrent, i les concentracions variaran fins que s'assoleixi l'equilibri. En aquest moment no progressar\u00E0 m\u00E9s la reacci\u00F3, i el potencial \" E \" esdevindr\u00E0 zero. Quan una bateria (que \u00E9s una cel\u00B7la galv\u00E0nica) s'esgota (V = 0) els productes qu\u00EDmics de l'interior han arribat a l'equilibri, i des d'aquest moment la bateria ha <>."@ca . . . . . "Potensial reduksi (dikenal pula sebagai potensial redoks, potensial oksidasi/reduksi, ORP, pe, \u03B5, atau ) adalah ukuran kecenderungan suatu spesi kimia untuk memperoleh elektron dan karenanya dapat tereduksi. Potensial reduksi diukur dalam satuan volt (V), atau milivolt (mV). Setiap spesi memiliki potensial reduksi intrinsiknya masing-masing; semakin positif potensial reduksinya, semakin besar afinitas spesi terhadap elektron dan kecenderungannya untuk tereduksi. Potensial reduksi merupakan pengukuran umum bagi kualitas air."@in . . . "\u039A\u03B1\u03BD\u03BF\u03BD\u03B9\u03BA\u03CC \u03AE \u03C0\u03C1\u03CC\u03C4\u03C5\u03C0\u03BF \u03B4\u03C5\u03BD\u03B1\u03BC\u03B9\u03BA\u03CC \u03BF\u03BE\u03B5\u03B9\u03B4\u03BF\u03B1\u03BD\u03B1\u03B3\u03C9\u03B3\u03AE\u03C2 (\u03C3\u03C5\u03BC\u03B2. \u03950) \u03B5\u03BD\u03CC\u03C2 \u03BF\u03BE\u03B5\u03B9\u03B4\u03BF\u03B1\u03BD\u03B1\u03B3\u03C9\u03B3\u03B9\u03BA\u03BF\u03CD \u03C3\u03C5\u03C3\u03C4\u03AE\u03BC\u03B1\u03C4\u03BF\u03C2 (\u03B7\u03BC\u03B9\u03C3\u03C4\u03BF\u03B9\u03C7\u03B5\u03AF\u03BF\u03C5), \u03B5\u03AF\u03BD\u03B1\u03B9 \u03B7 \u03B4\u03B9\u03B1\u03C6\u03BF\u03C1\u03AC \u03B4\u03C5\u03BD\u03B1\u03BC\u03B9\u03BA\u03BF\u03CD \u03BC\u03B5\u03C4\u03B1\u03BE\u03CD \u03C4\u03BF\u03C5 \u03B4\u03C5\u03BD\u03B1\u03BC\u03B9\u03BA\u03BF\u03CD \u03BF\u03BE\u03B5\u03B9\u03B4\u03BF\u03B1\u03BD\u03B1\u03B3\u03C9\u03B3\u03AE\u03C2 \u03C4\u03BF\u03C5 \u03C3\u03C5\u03C3\u03C4\u03AE\u03BC\u03B1\u03C4\u03BF\u03C2 \u03BA\u03B1\u03B9 \u03C4\u03BF\u03C5 \u03B4\u03C5\u03BD\u03B1\u03BC\u03B9\u03BA\u03BF\u03CD \u03BF\u03BE\u03B5\u03B9\u03B4\u03BF\u03B1\u03BD\u03B1\u03B3\u03C9\u03B3\u03AE\u03C2 \u03C4\u03B7\u03C2 \u03B9\u03C3\u03BF\u03C1\u03C1\u03BF\u03C0\u03AF\u03B1\u03C2 : \u03972 \u21C4 2\u0397+ + 2e, \u03C0\u03BF\u03C5 \u03B8\u03B5\u03C9\u03C1\u03B5\u03AF\u03C4\u03B1\u03B9 \u03C3\u03C5\u03BC\u03B2\u03B1\u03C4\u03B9\u03BA\u03AC \u03BC\u03B7\u03B4\u03AD\u03BD, \u03C3\u03B5 \u03BA\u03B1\u03B8\u03BF\u03C1\u03B9\u03C3\u03BC\u03AD\u03BD\u03B5\u03C2 \u03C3\u03C5\u03BD\u03B8\u03AE\u03BA\u03B5\u03C2 \u03C0\u03BF\u03C5 \u03B5\u03AF\u03BD\u03B1\u03B9: \n* \u03C3\u03C5\u03B3\u03BA\u03B5\u03BD\u03C4\u03C1\u03CE\u03C3\u03B5\u03B9\u03C2 \u03C4\u03C9\u03BD \u03B4\u03B9\u03B1\u03BB\u03C5\u03BC\u03AD\u03BD\u03C9\u03BD \u03C3\u03C9\u03BC\u03AC\u03C4\u03C9\u03BD C = 1 mol/L, \n* \u03C0\u03AF\u03B5\u03C3\u03B7 \u03BA\u03AC\u03B8\u03B5 \u03B1\u03B5\u03C1\u03AF\u03BF\u03C5 1 Atm, \n* \u03B8\u03B5\u03C1\u03BC\u03BF\u03BA\u03C1\u03B1\u03C3\u03AF\u03B1 \u0398 = 25 \u00B0C. \u03A3\u03C4\u03B1 \u03B2\u03B9\u03BF\u03BB\u03BF\u03B3\u03B9\u03BA\u03AC \u03C3\u03C5\u03C3\u03C4\u03AE\u03BC\u03B1\u03C4\u03B1 \u03C4\u03BF \u03950 \u03BF\u03C1\u03AF\u03B6\u03B5\u03C4\u03B1\u03B9 \u03C3\u03B5 pH = 7."@el . . . "Redoxpotential (reduktion-oxidation potential) \u00E4r en elektrisk potential (m\u00E4tt i volt) som m\u00E4ter en substans affinitet per elektroner (det vill s\u00E4ga energi som frig\u00F6rs n\u00E4r f\u00F6reningen bildas eller splittras dividerat per elektron). Om ett \u00E4mne oxideras s\u00E5 finns ett \u00E4mne som ocks\u00E5 reduceras, och vice versa, d\u00E4rav namnet. Man utg\u00E5r vanligtvis fr\u00E5n v\u00E4te, som har redoxpotentialen 0 (noll). En substans som har st\u00F6rre elektronegativitet \u00E4n v\u00E4te har positiv redoxpotential och \u00E4r mer ben\u00E4gen att genomg\u00E5 reduktion. Substanser med l\u00E4gre elektronegativitet \u00E4n v\u00E4te har negativ redoxpotential och \u00E4r mer ben\u00E4gna att oxidera. N\u00E4r elektroner r\u00F6r sig \"ned\u00E5t\" i en redoxreaktion, frig\u00F6rs energi (Gibbs fria energi) som brukar betecknas (-\u0394G), d\u00E4r G \u00E4r fri energi. Man beh\u00F6ver tillf\u00F6ra motsvarande energi (+\u0394G) f\u00F6r att v\u00E4nda reaktionen s\u00E5 att elektronerna r\u00F6r sig \"upp\u00E5t\". M\u00E4ngden syre i ett livsmedel kan m\u00E4tas med hj\u00E4lp av redoxpotentialen (Eh), som anges i millivolt, mV. En positiv Eh anger aeroba f\u00F6rh\u00E5llanden (mj\u00F6lk, malet k\u00F6tt etc.); medan en negativ Eh motsvarar anaeroba f\u00F6rh\u00E5llanden (ost, vete etc.)."@sv . . . . "\u2212"@en . . . . . . "\u041E\u043A\u0438\u0441\u043B\u0438\u0442\u0435\u043B\u044C\u043D\u043E-\u0432\u043E\u0441\u0441\u0442\u0430\u043D\u043E\u0432\u0438\u0442\u0435\u043B\u044C\u043D\u044B\u0439 \u043F\u043E\u0442\u0435\u043D\u0446\u0438\u0430\u043B (\u0440\u0435\u0434\u043E\u043A\u0441-\u043F\u043E\u0442\u0435\u043D\u0446\u0438\u0430\u043B \u043E\u0442 \u0430\u043D\u0433\u043B. redox \u2014 reduction-oxidation reaction, Eh \u0438\u043B\u0438 Eh) \u2014 \u043C\u0435\u0440\u0430 \u0441\u043F\u043E\u0441\u043E\u0431\u043D\u043E\u0441\u0442\u0438 \u0445\u0438\u043C\u0438\u0447\u0435\u0441\u043A\u043E\u0433\u043E \u0432\u0435\u0449\u0435\u0441\u0442\u0432\u0430 \u043F\u0440\u0438\u0441\u043E\u0435\u0434\u0438\u043D\u044F\u0442\u044C \u044D\u043B\u0435\u043A\u0442\u0440\u043E\u043D\u044B (\u0432\u043E\u0441\u0441\u0442\u0430\u043D\u0430\u0432\u043B\u0438\u0432\u0430\u0442\u044C\u0441\u044F). \u041E\u043A\u0438\u0441\u043B\u0438\u0442\u0435\u043B\u044C\u043D\u043E-\u0432\u043E\u0441\u0441\u0442\u0430\u043D\u043E\u0432\u0438\u0442\u0435\u043B\u044C\u043D\u044B\u0439 \u043F\u043E\u0442\u0435\u043D\u0446\u0438\u0430\u043B \u0432\u044B\u0440\u0430\u0436\u0430\u044E\u0442 \u0432 \u043C\u0438\u043B\u043B\u0438\u0432\u043E\u043B\u044C\u0442\u0430\u0445 (\u043C\u0412). \u041F\u0440\u0438\u043C\u0435\u0440\u043E\u043C \u043E\u043A\u0438\u0441\u043B\u0438\u0442\u0435\u043B\u044C\u043D\u043E-\u0432\u043E\u0441\u0441\u0442\u0430\u043D\u043E\u0432\u0438\u0442\u0435\u043B\u044C\u043D\u043E\u0433\u043E \u044D\u043B\u0435\u043A\u0442\u0440\u043E\u0434\u0430 \u044F\u0432\u043B\u044F\u044E\u0442\u0441\u044F: Pt/Fe3+, Fe2+."@ru . . . . . . . . "\u9178\u5316\u9084\u5143\u96FB\u4F4D"@ja . . . .