基于氢化物转移的二氧化碳还原催化:在催化回路中将金属氢化物引向有机氢化物。

IF 16.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY Accounts of Chemical Research Pub Date : 2024-09-18 DOI:10.1021/acs.accounts.4c00442
Joyanta Choudhury,Ritu Bhardwaj,Sanajit Kumar Mandal
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引用次数: 0

摘要

内容提要 将二氧化碳(CO2)还原转化为高附加值产品是一个极其重要的过程。在大气中二氧化碳浓度不断上升并对生物圈造成有害影响的背景下,使用替代燃料,通过保持大气中二氧化碳的净浓度,为低碳能源的储存和利用提供一条低碳或碳中和的途径,可能是一种前景广阔的解决方案。在可从二氧化碳中获得的各种还原产物中,甲酸和甲酸盐尤为重要,因为它们可用作替代燃料或可逆储氢材料。利用分子催化剂进行二氧化碳转化具有多种优势,如选择性高、机理清晰、用途广泛和稳定性强,因此对热化学和电/光化学二氧化碳还原过程具有吸引力。过渡金属基分子催化剂中 N-杂环碳烯(NHC)配体的存在提高了催化剂在高压、高温和还原性环境等苛刻反应条件下的稳定性,为持续催化活性和使用寿命提供了重要优势。虽然开发基于金属络合物的催化剂对于应对二氧化碳还原的挑战至关重要,但从开发真正可持续的方案(光合作用是其最大的灵感来源)的角度来看,使用纯有机化合物作为催化剂进行这种转化的可能性也是有利可图的。在本报告的开头,我们将介绍我们系统开发的基于 NHC 配体的分子金属复合物,用于将 CO2 化学升级为甲酸/甲酸盐。在这种情况下,我们讨论并分析了 NHC 作为强 σ 供体配体的能力,以获得更大的氢化物转移倾向。报告的范围从催化常温和高压二氧化碳加氢到二氧化碳转移加氢。还讨论了将二氧化碳捕获方法与二氧化碳转化相结合的问题。此外,还介绍了一种高效金属-NHC 催化剂的异质化案例,以开发一种用于实际应用的自支撑单位催化剂。最后,还讨论了我们最近成功开发出的新型有机催化剂系统,该系统的灵感来源于在光合作用二氧化碳还原过程中活跃的基于天然 NADP+/NADPH 的氢化物转移氧化还原对。这种催化剂的设计基础是一种嵌入有吡啶中心环的双咪唑杂环烯,它能够通过电催化将 CO2 转化为 HCO2H,其 TON 值是目前已报道的有机催化剂 TON 值的 100-1000 倍。总之,我们相信,本开户绑定手机领体验金中介绍的基于氢化物转移的二氧化碳还原催化研究成果具有超越我们工作的重要意义,并有可能激励未来的研究朝着这一重要领域进一步发展。
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Hydride Transfer-Based CO2 Reduction Catalysis: Navigating Metal Hydride to Organic Hydride in the Catalytic Loop.
ConspectusThe reductive conversion of carbon dioxide (CO2) into value-added products is a process of immense importance. In the context of rising CO2 concentration in the atmosphere and the detrimental effects it is having on the biosphere, use of alternative fuels which can offer a low-carbon or carbon-neutral pathway for storage and utilization of low-carbon energy by maintaining the net atmospheric CO2 concentration might be a prospective solution. Among the wide variety of reduced products that can be obtained from CO2, formic acid and formate salts are particularly important due to their ability to be used as an alternative fuel or a reversible hydrogen storage material. Utilization of molecular catalysts for CO2 conversion offers several advantages such as high selectivity, mechanistic clarity, versatility, and stability, making them attractive for thermochemical and electro/photochemical CO2 reduction processes. The presence of N-heterocyclic carbene (NHC) ligands in transition-metal-based molecular catalysts enhances the stability of the catalysts under harsh reaction conditions, such as high pressure, high temperature, and reductive environments, providing crucial benefits for sustained catalytic activity and longevity. Though the development of metal complex-based catalysts is essential to addressing the challenge of CO2 reduction, the possibility of using purely organic compounds as catalysts for this transformation is lucrative from the aspect of developing a truly sustainable protocol with photosynthesis being its biggest inspiration. We begin this Account by examining our systematic development of molecular metal complexes based on NHC ligands for the chemical upgradation of CO2 to formic acid/formate salt. In such cases, the ability of NHCs to act as strong σ-donor ligands for a greater hydride transfer propensity is discussed and analyzed. The reports range from catalytic ambient- and high-pressure CO2 hydrogenation to CO2 transfer-hydrogenation. Coupling of CO2 capture methodologies with CO2 conversion is also discussed. A case is made for the heterogenization of one of the highly efficient metal-NHC catalysts to develop a self-supported single-site catalyst for practical applications. Finally, our recent success of developing a novel organic catalyst system inspired from the natural NADP+/NADPH-based hydride-transfer redox couple that is active in photosynthetic CO2 reduction has been discussed. This catalyst is designed based on a bis-imidazolium-embedded heterohelicene with a central pyridine ring and is capable of electrocatalytically converting CO2 to HCO2H with TON values 100-1000 times greater than the existing reported values achieved so far by organic catalysts. Overall, we believe that the results of hydride transfer-based CO2 reduction catalysis presented in this Account hold significant implications beyond our work and have the potential for motivating future research toward further development in this important field.
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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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