对光催化低维半导体的激动人心的展望
Hui Wang1,2, Wenxiu Liu1, Xin He1
1Hefei National Laboratory for Physical Sciences at the Microscale, CAS Centre for Excellence in Nanoscience, University of Science and Technology of China, Hefei, Anhui 230026, P. R. China.
Journal of the American Chemical Society
|July 25, 2020
概括
低维半导体利用刺激效应进行有效的太阳能转换. 了解这些激子是优化光催化技术的关键,
科学领域:
- 材料科学
- 光催化
- 可再生能源
背景情况:
- 由于介电选减少,低维半导体表现出独特的刺激效应.
- 刺激子 (结合电子孔对) 是主要的光活性物种,影响光催化.
- 激发效应不同于电荷载体的自由度,如旋转和轨道.
研究的目的:
- 在低维半导体光催化中提供激发效应的概述.
- 强调独特的刺激性质对太阳能转换的重要性.
- 讨论激子与电荷载体在光催化反应中的相互作用.
主要方法:
- 关于低维半导体和光催化物的文献综述.
- 对刺激性质及其对能量转移机制的影响的分析.
- 对调节刺激性质的最新进展进行讨论.
主要成果:
- 基于激发的能量转移与基于载体的电荷转移相比提供了不同的机制.
- 激发效应对光催化反应中的量子产量有重要影响.
- 刺激性质的调节对于优化低维半导体光催化剂至关重要.
结论:
- 激发效应在低维半导体光催化中起着至关重要的作用.
- 对激发和载体触发反应进行评估是必要的.
- 未来的研究应该解决利用激发性质提高光催化剂的挑战.
相关概念视频
Thermal and Photochemical Electrocyclic Reactions: Overview
2.8K
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.
2.8K
Photochemical Electrocyclic Reactions: Stereochemistry
2.1K
The absorption of UV–visible light by conjugated systems causes the promotion of an electron from the ground state to the excited state. Consequently, photochemical electrocyclic reactions proceed via the excited-state HOMO rather than the ground-state HOMO. Since the ground- and excited-state HOMOs have different symmetries, the stereochemical outcome of electrocyclic reactions depends on the mode of activation; i.e., thermal or photochemical.
Selection Rules: Photochemical Activation
Selection Rules: Photochemical Activation
2.1K
Semiconductors
1.2K
There is variation in the electrical conductivity of materials - metals, semiconductors, and insulators that are showcased with the help of the energy band diagrams.
Metals such as copper (Cu), zinc (Zn), or lead (Pb) have low resistivity and feature conduction bands that are either not fully occupied or overlap with the valence band, making a bandgap non-existent. This allows electrons in the highest energy levels of the valence band to easily transition to the conduction band upon gaining...
Metals such as copper (Cu), zinc (Zn), or lead (Pb) have low resistivity and feature conduction bands that are either not fully occupied or overlap with the valence band, making a bandgap non-existent. This allows electrons in the highest energy levels of the valence band to easily transition to the conduction band upon gaining...
1.2K
Photoelectric Effect
38.1K
When light of a particular wavelength strikes a metal surface, electrons are emitted. This is called the photoelectric effect. The minimum frequency of light that can cause such emission of electrons is called the threshold frequency, which is specific to the metal. Light with a frequency lower than the threshold frequency, even if it is of high intensity, cannot initiate the emission of electrons. However, when the frequency is higher than the threshold value, the number of electrons ejected...
38.1K
Photoluminescence: Applications
902
Photoluminescence offers a wide range of applications due to its inherent sensitivity and selectivity. This technique allows for both direct and indirect analyses of the analyte. Direct quantitative analysis is possible when the analyte exhibits a favorable quantum yield for fluorescence or phosphorescence. However, an indirect analysis may be feasible if the analyte is not fluorescent or phosphorescent, or if the quantum yield is unfavorable. Indirect methods include reacting the analyte with...
902
The Z-Scheme of Electron Transport in Photosynthesis
12.6K
The light reactions of photosynthesis assume a linear flow of electrons from water to NADP+. During this process, light energy drives the splitting of water molecules to produce oxygen. However, oxidation of water molecules is a thermodynamically unfavorable reaction and requires a strong oxidizing agent. This is accomplished by the first product of light reactions: oxidized P680 (or P680+), the most powerful oxidizing agent known in biology. The oxidized P680 that acquires an electron from the...
12.6K


