CHEM 1A03 Chapter Notes - Chapter 20: Standard Hydrogen Electrode, Electrochemical Cell, Electromotive Force

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CHEM 1A03 Full Course Notes
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CHEM 1A03 Full Course Notes
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An electrode immersed in a solution containing the same metal, mn+, is called a half cell. The 2 half reactions are separated, yet connected electrically (salt bridge, external wire: charge is carried by ions, so a wire cannot be used, anions (no3. Solid metals = electrodes (anode, cathode), m. Movement of e- from anode to cathode generates violated. Movement of cations and anions through salt bridge maintains electro neutrality in solution. Oxidation (anode) surface of electrode erodes as mn+ are produced; n e- then travels to cathode: m mn+ + n e, cu(s) cu2+(aq) 2 e- Reduction (cathode) cathode gains mass as mn+ ions gain n e- and form m(s: mn+ + n e- m, 2 ag+ (aq) + 2e- 2 ag(s) Remember an ox and a red cat anode ox, reduce cathode; or vowels oa, consonants cr. Overall cell reaction: cu(s) + 2 ag+ Galvanic (voltaic) cell results from spontaneous chemical reactions.

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