热梯度诱导的电压在多电解质的起源
Ayesha Sultana1, Alois Würger2, Ziyauddin Khan1
1Laboratory of Organic Electronics, Department of Science and Technology, Linköping University, Norrköping, SE-601 74, Sweden.
Small (Weinheim an der Bergstrasse, Germany)
|December 5, 2023
概括
离子热电材料从热中产生电压. 这项研究揭示了水度梯度,而不仅仅是温度,显著驱动聚电解质中的电压,提供新的能量收集途径.
科学领域:
- 材料科学 材料科学 材料科学
- 电化学 电化学 电化学
- 收集能源 收集能源
背景情况:
- 离子热电材料提供低成本,环保的能源转换.
- 它们在电解质中产生热电压的确切机制尚不清楚.
- 现有的研究突出显示了较大的Seebeck系数,但缺乏机械学的理解.
研究的目的:
- 阐明基于聚电解质的离子热电材料中热电压生成的机制.
- 为了研究度梯度在热电压中的作用.
- 确定影响离子传输和输出电压的因素.
主要方法:
- 研究了三种多电解质类型,具有不同的阳离子.
- 分析的水含量随着温度的变化而变化.
- 测量导电性的变化与水含量和温度.
- 由水含量波动引起的研究电压.
- 应用"跳转模式"动态用于电荷传输分析.
主要成果:
- 确定了度梯度对热电压的显著贡献.
- 证明了阴离子水化会影响水度梯度.
- 表明"水电压"可以超过一个数量级的热扩散潜力.
- 发现"水电压"是离子热电超级电容器的主要贡献者.
结论:
- 澄清了电解质中热电压的主导机制,强调了"水电压"效应.
- 确定了阴离子水合和由此产生的水梯度是电压生成的关键.
- 为开发高效的离子热电材料用于能源采集提供了新的方向.
相关概念视频
What is an Electrochemical Gradient?
110.4K
Adenosine triphosphate, or ATP, is considered the primary energy source in cells. However, energy can also be stored in the electrochemical gradient of an ion across the plasma membrane, which is determined by two factors: its chemical and electrical gradients.
The chemical gradient relies on differences in the abundance of a substance on the outside versus the inside of a cell and flows from areas of high to low ion concentration. In contrast, the electrical gradient revolves around an...
The chemical gradient relies on differences in the abundance of a substance on the outside versus the inside of a cell and flows from areas of high to low ion concentration. In contrast, the electrical gradient revolves around an...
110.4K
Potential Due to a Polarized Object
415
A neutral atom consists of a positively charged nucleus surrounded by a negatively charged electron cloud. When placed in an external electric field, the external electric force pulls the electrons and nucleus apart, opposite to the intrinsic attraction between the nucleus and the electrons. The opposing forces balance each other with a slight shift between the center of masses of the nucleus and the electron cloud, resulting in a polarized atom. On the other hand, a few molecules, like water,...
415
Induced Electric Dipoles
4.2K
A permanent electric dipole orients itself along an external electric field. This rotation can be quantified by defining the potential energy because the external torque does work in rotating it. Then, the potential energy is minimum at the parallel configuration and maximum at the antiparallel configuration. While the former is a stable equilibrium, the latter is an unstable equilibrium.
Since the absolute value of potential energy holds no physical meaning, its zero value can be chosen as per...
Since the absolute value of potential energy holds no physical meaning, its zero value can be chosen as per...
4.2K
Electrochemical Gradient and Channel Proteins: An Overview
2.3K
An electrochemical gradient is a fundamental concept in biology and chemistry. It regulates the movement of ions across cell membranes. This movement is influenced by two factors:
The electrical gradient: The electrical gradient across cell membranes refers to the difference in electric charge between the inside and outside of a cell. This difference drives the movement of ions towards or away from the cells. For instance, if the inside of the cell is more negatively charged relative to...
The electrical gradient: The electrical gradient across cell membranes refers to the difference in electric charge between the inside and outside of a cell. This difference drives the movement of ions towards or away from the cells. For instance, if the inside of the cell is more negatively charged relative to...
2.3K
The Hall Effect
2.4K
Edwin H. Hall, in the year 1879, devised an experiment that could be used to identify the polarity of the predominant charge carriers in a conducting material. From a historical perspective, this experiment was the first to demonstrate that the charge carriers in most metals are negative.
2.4K
Electrostatic Boundary Conditions
480
Consider an external electric field propagating through a homogeneous medium. When the electric field crosses the surface boundary of the medium, it undergoes a discontinuity. The electric field can be resolved into normal and tangential components. The amount by which the field changes at any boundary is given by the difference between the field components above and below the surface boundary.
The surface integral of an electric field is given by Gauss's law in integral form and is related to...
The surface integral of an electric field is given by Gauss's law in integral form and is related to...
480


