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**课程名称:** 物理化学 - 电化学 **课程概述:** 本课程深入探讨电化学的核心概念,重点介绍电化学电池的结构与功能。电化学电池由浸入电解质溶液的两个金属电极组成,其中电解质作为离子导体扮演着重要角色。 课程将区分两种主要类型的电化学电池: * **原电池 (Galvanic Cell):** 将自发氧化还原反应的化学能转化为电能。 * **电解池 (Electrolytic Cell):** 利用电能驱动非自发的氧化还原反应。 标准电极电势的定义及其与标准氢电极(电势为零)的关系将被详细阐述。Nernst方程将揭示电极和电池电势随浓度的变化规律。 此外,课程还将研究电解质溶液的电导率 (κ),探讨其与电解质浓度、溶剂性质以及温度的关系。摩尔电导率 (Λm) 的定义及其在不同浓度下(尤其是强电解质和弱电解质)的变化趋势将被分析。Kohlrausch 的离子独立迁移定律及其在无穷稀释条件下的应用也将作为重要内容进行讲解。 课程还将涉及电化学在实际应用中的意义,包括电池、燃料电池(作为有用的原电池形式)、金属腐蚀(作为一种电化学现象)以及电化学原理在“氢经济”中的相关性。
SUMMARYAn electrochemical cell consists of two metallic electrodes dipping in electrolytic solution(s). Thus an important component of the electrochemical cell is the ionic conductor or electrolyte. Electrochemical cells are of two types. In galvanic cell, the chemical energy of a spontaneous redox reaction is converted into electrical work, whereas in an electrolytic cell, electrical energy is used to carry out a nonspontaneous redox reaction. The standard electrode potential for any electrode dipping in an appropriate solution is defined with respect to standard electrode potential of hydrogen electrode taken as zero. Concentration dependence of the potentials of the electrodes and the cells are given by Nernst equation. The conductivity, κ, of an electrolytic solution depends on the concentration of the electrolyte, nature of solvent and temperature. Molar conductivity, Λm, is defined by = κ/c where c is the concentration. Conductivity decreases but molar conductivity increases with decrease in concentration. It increases slowly with decrease in concentration for strong electrolytes while the increase is very steep for weak electrolytes in very dilute solutions. Kohlrausch found that molar conductivity at infinite dilution, for an electrolyte is sum of the contribution of the molar conductivity of the ions in which it dissociates. It is known as law of independent migration of ions and has many applications. Ions conduct electricity through the solution but oxidation and reduction of the ions take place at the electrodes in an electrochemical cell. Batteries and fuel cells are very useful forms of galvanic cell. Corrosion of metals is essentially an electrochemical phenomenon. Electrochemical principles are relevant to the Hydrogen Economy.