Mechanistic study of DETA-modified CdS for carbon dioxide reduction†

IF 4.4 3区 化学 Q2 CHEMISTRY, PHYSICAL Catalysis Science & Technology Pub Date : 2024-11-05 DOI:10.1039/d4cy01140f
Meiyan Guo , Wanxiang Yang , Yi Li , Yongfan Zhang , Wei Lin
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Abstract

Cadmium sulfide (CdS) exhibits remarkable light absorption capabilities and is widely employed in photocatalytic reduction of CO2. Nevertheless, the crystal facet effects on the micro-scale mechanisms governing CO2 conversion on CdS remain elusive. This study theoretically investigates the electronic properties of hexagonal-phase (101), (001), and cubic-phase (111) CdS surfaces modified with diethylenetriamine (DETA). From a microscopic viewpoint, it elucidates the unique bonding characteristics of CO2 on different exposed facets of DETA/CdS and the formation mechanisms leading to products such as CO, HCOOH, CH2O, CH3OH, and CH4. Our findings reveal that the DETA/CdS(101) surface is the most stable, effectively adsorbing hydrogen and CO2 at varied Cd sites with a high selectivity towards CO production, thereby showing promise for syngas generation, albeit with potential yields of formic acid and methane. Conversely, DETA/CdS(001) and (111) primarily facilitate the reduction of CO2 to CH4. These discoveries offer theoretical insights into photochemical experiments involving CO2 reduction on CdS, shedding light on the influence of crystal facets on reaction pathways.

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DETA 改性 CdS 用于二氧化碳还原的机理研究†。
硫化镉具有良好的光吸收能力,被广泛应用于光催化还原CO2。然而,晶面对cd上CO2转化的微观机制的影响仍然难以捉摸。本研究从理论上研究了六相(101),(001)和立方相(111)CdS表面用二乙烯三胺(DETA)修饰的电子性质。从微观角度阐明了CO2在DETA/CdS不同暴露面上的独特成键特性,以及CO、HCOOH、CH2O、CH3OH和CH4等产物的形成机制。我们的研究结果表明,DETA/CdS(101)表面是最稳定的,在不同的Cd位点上有效地吸附氢和二氧化碳,对CO的产生有很高的选择性,从而显示出合成气的前景,尽管有可能产生甲酸和甲烷。相反,DETA/CdS(001)和(111)主要促进CO2还原为CH4。这些发现为cd上二氧化碳还原的光化学实验提供了理论见解,揭示了晶体面对反应途径的影响。
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来源期刊
Catalysis Science & Technology
Catalysis Science & Technology CHEMISTRY, PHYSICAL-
CiteScore
8.70
自引率
6.00%
发文量
587
审稿时长
1.5 months
期刊介绍: A multidisciplinary journal focusing on cutting edge research across all fundamental science and technological aspects of catalysis. Editor-in-chief: Bert Weckhuysen Impact factor: 5.0 Time to first decision (peer reviewed only): 31 days
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