2mno4 - + 5h2o2 +

  1. hello i'm doing a redox stoichiometry lab having to do with titrationso we are given these two equations: 6 H + 3H2O2 + 2MnO4
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    2. jewels asked by jewels
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  2. which is the correct balanced equation for a given titration process, (a) or (b)?a) 6H+ + 2MnO4- + 3H2O2 -> 4O2 + 2Mn2+ + 6H2O
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    2. sarah asked by sarah
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  3. which is the correct balanced equation for a given titration process, (a) or (b)?a) 6H+ + 2MnO4- + 3H2O2 -> 4O2 + 2Mn2+ + 6H2O
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    2. sarah asked by sarah
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  4. hello i'm doing a redox stoichiometry lab having to do with titration6H +5H2O2 + 2MnO4 -- 5O2 + 2Mn2+ + 8H2O Why is H2O2 the
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    2. Jo asked by Jo
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  5. permanganate ion oxidizes hydrogen peroxide to oxygen gas and Mn2+ in acidic solutionbalance this equation: MnO4- + H2O2 yield
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    2. bme1(check my answer) asked by bme1(check my answer)
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  6. Based on equation:2MnO4¬¬(-) + 6H(+) +5H2O2 → 2Mn(2+) +8H2O + 5O2 A 50.0 mL solution of hydrogen peroxide of unknown
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    2. Bree asked by Bree
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  7. 2mno4 - + 5h2o2 + 6h= 2mn 2+ + 5o2(gás) + 8h2oYou must determine the percentage of hydrogen peroxide (H2O2) in a solution by
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    2. Nouri asked by Nouri
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  8. what is the balanced net ionic equation for the oxidation of hydrogen peroxide by permanganate ion and find out how many moles
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    2. kay asked by kay
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  9. 2MnO4 + H + 5HSO3 = 2Mn + 5HSO4 + 3H2OI was asked to write the half equations for both the oxidized and reduced reactions.
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    2. Kylee asked by Kylee
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  10. 2MnO4 + H + 5HSO3 = 2Mn + 5HSO4 + 3H2OWhich is being oxidized and which is being reduced?
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    2. Rue asked by Rue
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