氮化碳在前沿绿色催化中的电子结构和功能。

IF 17.7 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Accounts of Chemical Research Pub Date : 2024-08-20 Epub Date: 2024-08-06 DOI:10.1021/acs.accounts.4c00266
Jingkai Lin, Wenjie Tian, Huayang Zhang, Hongqi Sun, Shaobin Wang
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引用次数: 0

摘要

Conspectus 基于石墨氮化碳的材料由于其 "富集 "性、结构多样性、可调的电子和光学特性以及化学稳定性,已成为各种能源和环境应用领域前景广阔的光催化剂。优化氮化碳的物理化学特性包含多种方法,包括调节固有结构缺陷、形态控制、异质结构构建以及异质原子和金属原子掺杂。这些策略对于最终增强其光催化活性至关重要。以往的综述和大量实例主要集中于氮化碳基材料的合成、改性和在光催化中的应用。然而,对于如何理解各种工程化碳氮化物的电子特性和功能及其精确的定制策略,并最终解释它们在目标光催化系统中提高性能的规律性和特异性,一直缺乏直接而深入的讨论。在过去十年中,我们的研究小组对氮化碳基材料及其在光催化中的应用进行了广泛的研究。这些研究表明,氮化碳材料的电子结构与其光催化反应活性之间有着密切而又错综复杂的关系。了解氮化碳的电子结构和功能以及不同的工程策略,对于光催化过程从基础研究到实际应用的改进至关重要。为此,在本报告中,我们首先深入探讨了氮化碳电子特性的本质,重点介绍了氮化碳的电子结构,包括能带结构、态密度、分子轨道和能带中心,以及其电子功能,如电荷分布、内电场和外电场力。随后,我们根据课题组的最新研究成果,详细讨论了氮化碳的策略性改性及其对理化性质(尤其是光学性质和固有电子特性)的影响,以提高光催化性能。这些改性可分为以下几类:(i) 成分改变,包括层内和界面异质结以及同质结,以调节带边电位和光诱导电子和空穴对表面氧化还原反应的反应性;(ii) 尺寸调整,即设计氮化碳的尺寸结构,以影响电子转移方向;(iii) 缺陷和杂原子修饰,在氮化碳框架中引入对称性断裂,促进电荷再分布,从而改变电荷密度和电子结构;以及 (iv) 单原子金属锚定,通过独特的金属-N 配位构型促进轨道杂化和电荷转移增强。最后,我们对氮化碳电子结构和功能的精确操作和表征的前景和挑战进行了评估。将原位电子结构分析、基于机器学习的理论计算和精确的机理研究结合起来,可能会推动其在光驱动循环经济中的长足发展。我们希望本开户绑定手机领体验金能为氮化碳基材料在光催化中的运行机制和定制结构提供新的见解和视角。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Electronic Structure and Functions of Carbon Nitride in Frontier Green Catalysis.

Electronic Structure and Functions of Carbon Nitride in Frontier Green Catalysis.

ConspectusGraphitic carbon nitride-based materials have emerged as promising photocatalysts for a variety of energy and environmental applications owing to their "earth-abundant" nature, structural versatility, tunable electronic and optical properties, and chemical stability. Optimizing carbon nitride's physicochemical properties encompasses a variety of approaches, including the regulation of inherent structural defects, morphology control, heterostructure construction, and heteroatom and metal-atom doping. These strategies are pivotal in ultimately enhancing their photocatalytic activities. Previous reviews with extensive examples have mainly focused on the synthesis, modification, and application of carbon nitride-based materials in photocatalysis. However, there has been a lack of straightforward and in-depth discussion to understand the electronic characteristics and functions of various engineered carbon nitrides as well as their precise tailoring strategies and ultimately to explain the regularity and specificity of their improved performance in targeted photocatalytic systems. In the past ten years, our group has conducted extensive investigations on carbon nitride-based materials and their application in photocatalysis. These studies demonstrate the close yet intricate relationship between the electronic structure of carbon nitride materials and their photocatalytic reactivity. Understanding the electronic structure and functions of carbon nitride, as well as different engineering strategies, is essential for the improvement of photocatalytic processes from fundamental study to practical applications.To this end, in this Account, we first delve into the nature of the electronic properties of carbon nitride, highlighting the electronic structures, including band structure, density of states, molecular orbitals, and band center, as well as its electronic functions, such as the charge distribution, internal electric field, and external electric force. Subsequently, based on recent research in our group, we present a detailed discussion of the strategic modifications of carbon nitride and the consequential impacts on the physicochemical properties, particularly the optical properties and intrinsic electronic characteristics, for enhancing the photocatalytic performance. These modifications are categorized as follows: (i) component changing, which involves intralayer and interface heterojunctions as well as homojunctions, to modulate the band-edge potentials and reactivity of photoinduced electrons and holes toward surface redox reactions; (ii) dimensional tuning, which engineers the dimensional structure of carbon nitride, to influence the electron transfer direction; (iii) defect and heteroatom modification, which introduces a symmetry break in the carbon nitride framework, to promote charge redistribution for altering the charge density and electronic structure; and (iv) anchoring of single-atom metals to facilitate orbital hybridization and charge transfer enhancement through the unique metal-N coordination configurations. Finally, we propose an appraisal of the prospects and challenges in the precise manipulation and characterization of the electronic structure and functions of carbon nitride. The integration of in situ electronic structure analysis, theoretical calculation based on machine learning, and precise mechanism study may propel its substantial development in the light-driven circular economy. We hope this Account aspires to offer novel insights and perspectives into the operational mechanisms and tailored structure of carbon nitride-based materials in photocatalysis.

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来源期刊
Accounts of Chemical Research
Accounts of Chemical Research 化学-化学综合
CiteScore
31.40
自引率
1.10%
发文量
312
审稿时长
2 months
期刊介绍: Accounts of Chemical Research presents short, concise and critical articles offering easy-to-read overviews of basic research and applications in all areas of chemistry and biochemistry. These short reviews focus on research from the author’s own laboratory and are designed to teach the reader about a research project. In addition, Accounts of Chemical Research publishes commentaries that give an informed opinion on a current research problem. Special Issues online are devoted to a single topic of unusual activity and significance. Accounts of Chemical Research replaces the traditional article abstract with an article "Conspectus." These entries synopsize the research affording the reader a closer look at the content and significance of an article. Through this provision of a more detailed description of the article contents, the Conspectus enhances the article's discoverability by search engines and the exposure for the research.
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