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Electrolysis03:00

Electrolysis

25.7K
In a galvanic cell, the electrical work is done by a redox system on its surroundings as electrons produced by the spontaneous redox reactions are transferred through an external circuit. Alternatively, an external circuit does work on a redox system by imposing a voltage sufficient to drive an otherwise nonspontaneous reaction in a process known as electrolysis. For instance, recharging a battery involves the use of an external power source to drive the spontaneous (discharge) cell reaction in...
25.7K
Potentiometry: Membrane Electrodes01:15

Potentiometry: Membrane Electrodes

311
Membrane electrodes, also known as p-ion electrodes, use membranes that selectively interact with free analyte ions, generating a potential difference across the membrane. The resulting membrane potential, known as the asymmetry potential, is not zero even when analyte concentrations on both sides of the membrane are equal. The membrane's response is typically not selective to a single analyte but proportional to the concentration of all ions in the sample solution capable of interacting at...
311
Ion Exchange01:17

Ion Exchange

397
Ion exchange chromatography separates charged molecules from a solution by reversibly exchanging them with mobile, or 'active', ions associated with the oppositely charged stationary phase. This method can be used to separate ions, soften and deionize water, and purify solutions. The polymers comprising the ion-exchange column are high-molecular-weight and chemically stable polymers, crosslinked to be porous and essentially insoluble. They are also functionalized with either acidic or...
397
Ion-Exchange Chromatography01:09

Ion-Exchange Chromatography

263
Ion-exchange chromatography, or IEC, is a technique for separating ions based on their affinity for the stationary phase. The stationary phase is a cross-linked polymer resin with covalently attached ionic functional groups. The functional groups can be either positively charged (cation exchangers) or negatively charged (anion exchangers). A cation exchanger consists of a polymeric anion and active cations, while an anion exchanger is a polymeric cation with active anions. The choice of...
263
Electrogravimetric Analysis: Overview01:30

Electrogravimetric Analysis: Overview

160
Electrogravimetric analysis measures the weight of an analyte deposited electrolytically onto a suitable working electrode. This method involves applying a potential to a pre-weighed electrode submerged in a solution, which results in the desired substance being deposited through reduction at the cathode or oxidation at the anode. The electrode's weight is recorded after deposition, and the difference in weight gives the analyte's weight in the solution.
To test the completeness of the...
160
Interfacial Electrochemical Methods: Overview01:06

Interfacial Electrochemical Methods: Overview

200
Interfacial electrochemical methods focus on the phenomena occurring at the boundary between an electrode and a solution, as opposed to bulk methods that concentrate on the solution's overall properties. These interfacial methods are classified as either static or dynamic based on the presence of a nonzero current in the electrochemical cell and the consistency of analyte concentrations. Static methods, such as potentiometry, measure the cell's potential without any significant current...
200

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相关实验视频

Updated: May 12, 2025

Ion-Exchange Membranes for the Fabrication of Reverse Electrodialysis Device
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Ion-Exchange Membranes for the Fabrication of Reverse Electrodialysis Device

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识别和量化离子交换膜水电解器中的损失来源.

Karam Yassin1,2, Rinat Attias2, Yoed Tsur1,2

  • 1The Wolfson Department of Chemical Engineering, Technion-Israel Institute of Technology, Haifa 3200003, Israel.

ACS electrochemistry
|May 7, 2025
PubMed
概括

使用电化学阻抗光谱学和基因编程量化了离子交换膜水电解器 (AEMWE) 的性能损失. 降低KOH度显著增加了离子运输阻力,影响了AEMWE的效率.

科学领域:

  • 电化学 电化学 电化学
  • 材料科学 材料科学 材料科学

背景情况:

  • 阳离子交换膜水电解器 (AEMWEs) 提供了使用无贵金属催化剂和无膜的可持续替代方案.
  • 了解性能限制对于商业化AEMWE技术至关重要.

研究的目的:

  • 在各种操作条件下识别和量化AEMWE的性能损失来源.
  • 开发一种分析模型,用于使用放松时间分布函数 (DFRT) 分析电化学过程.

主要方法:

  • 使用电化学阻抗光谱 (EIS) 与基于MATLAB的遗传编程相结合.
  • 开发了一个分析DFRT模型来区分法拉第和非法拉第过程.
  • 研究KOH度的影响,使用不同阳极电解质,温度和膜类型的干性阴极操作.

主要成果:

  • 阳极中KOH度的降低显著增加了离子运输阻力,降低了性能.
  • 干式阴极运行与KOH阳极提供性能可比于双电解质系统,由于有效的水反扩散.
  • 使用纯水作为阳极电解质与干阴极大幅增加电阻和阻碍离子运输.

结论:

  • DFRT分析有效地将AEMWE中的电化学现象分离和量化,简化了系统设计.

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Electrochemically and Bioelectrochemically Induced Ammonium Recovery

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  • 优化阳极电解质和离子材料对于提高AEMWE效率和实现商业化至关重要.
  • 这种方法有助于开发高效的AEMWE,用于清洁的生产.