用于热化学能量储存和转换的材料:用于低温应用的属性
Steven Kiyabu1, Aleksandr Shkatulov2,3, Alauddin Ahmed1
1Mechanical Engineering Department, University of Michigan, Ann Arbor, MI 48109, USA.
Materials horizons
|November 7, 2025
概括
热化学材料具有高热储存密度,但在反应速度和循环寿命方面面临挑战. 本综述探讨了有效储存热能的材料和机制,特别是用于低温应用.
科学领域:
- 材料科学 材料科学 材料科学
- 化学工程是化学工程的重要组成部分.
- 储能 储能 储能 储能 储能 储能
背景情况:
- 有效的热能储存对于提高各个经济部门的工艺效率至关重要.
- 目前的热储设备开发处于早期阶段,需要进一步的研究和商业化努力.
- 热化学材料具有高能量密度,但由于反应速度缓慢和周期寿命较短而受到限制.
研究的目的:
- 为研究人员介绍利用热化学反应的热储材料.
- 加快热能储能设备的开发和商业化.
- 专注于与低温应用相关的特性,例如家庭供暖,冷却和热水回收.
主要方法:
- 热能储存中的一般概念概述.
- 详细检查低温热化学储存的机制和材料.
- 讨论了固体 (水合物,氨酸,甲醇酸) 中的吸收,多孔宿主 (热质,MOF) 中的吸附,以及在液体中的稀释.
主要成果:
- 热化学材料具有高能量密度,但在反应速度和周期寿命方面面临挑战.
- 低温应用包括家庭热储,吸附式冷却和热水回收.
- 每种存储方法的基准和新兴材料都有不同的优缺点.
结论:
- 需要进一步的研究来克服热化学储能反应速率和循环寿命方面的挑战.
- 开发最佳材料是释放热化学储能各种应用潜力的关键.
- 该审查强调了用于高效和可扩展的热能储能解决方案的材料进步的机会.
相关概念视频
Thermochemical Equations
35.6K
For a chemical reaction (the system) carried out at constant pressure – with the only work done caused by expansion or contraction – the enthalpy of reaction (also called the heat of reaction, ΔHrxn) is equal to the heat exchanged with the surroundings (qp).
35.6K
Thermal Sigmatropic Reactions: Overview
2.4K
Sigmatropic rearrangements are a class of pericyclic reactions in which a σ bond migrates from one part of a π system to another. These are intramolecular rearrangements where the total number of σ and π bonds remain unchanged.
Sigmatropic shifts are classified based on an order term [i, j ], where i and j indicate the number of atoms across which each end of the σ bond migrates. Below are examples of a [3,3] sigmatropic shift in 1,5-hexadiene, referred...
Sigmatropic shifts are classified based on an order term [i, j ], where i and j indicate the number of atoms across which each end of the σ bond migrates. Below are examples of a [3,3] sigmatropic shift in 1,5-hexadiene, referred...
2.4K
Thermal Electrocyclic Reactions: Stereochemistry
2.5K
The stereochemistry of electrocyclic reactions is strongly influenced by the orbital symmetry of the polyene HOMO. Under thermal conditions, the reaction proceeds via the ground-state HOMO.
Selection Rules: Thermal Activation
Conjugated systems containing an even number of π-electron pairs undergo a conrotatory ring closure. For example, thermal electrocyclization of (2E,4E)-2,4-hexadiene, a conjugated diene containing two π-electron pairs, gives trans-3,4-dimethylcyclobutene.
Selection Rules: Thermal Activation
Conjugated systems containing an even number of π-electron pairs undergo a conrotatory ring closure. For example, thermal electrocyclization of (2E,4E)-2,4-hexadiene, a conjugated diene containing two π-electron pairs, gives trans-3,4-dimethylcyclobutene.
2.5K
Thermal and Photochemical Electrocyclic Reactions: Overview
2.9K
Electrocyclic reactions are reversible reactions. They involve an intramolecular cyclization or ring-opening of a conjugated polyene. Shown below are two examples of electrocyclic reactions. In the first reaction, the formation of the cyclic product is favored. In contrast, in the second reaction, ring-opening is favored due to the high ring strain associated with cyclobutene formation.
2.9K
Thermodynamics: Chemical Potential and Activity
1.6K
The effective concentration of a species in a solution can be expressed precisely in terms of its activity. Activity considers the effect of electrolytes present in the vicinity of the species of interest and depends on the ionic strength of the solution. The activity of a species is expressed as the product of molar concentration and the activity coefficient of the species.
The thermodynamic equilibrium constant is more accurately defined in terms of activity rather than concentration.
The thermodynamic equilibrium constant is more accurately defined in terms of activity rather than concentration.
1.6K
Thermodynamic Potentials
1.5K
Thermodynamic potentials are state functions that are extremely useful in analyzing a thermodynamic system. They have dimensions of energy. The four important thermodynamic potentials are internal energy, enthalpy, Helmholtz free energy, and Gibbs free energy. These thermodynamic potentials can be expressed using two of the following variables: pressure, volume, temperature, and entropy. These two variables are expressed as the rate of change of the thermodynamic potential with respect to other...
1.5K


