利用钌和铜催化剂催化甲酸脱氢酶反应。

IF 7 2区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Aman Mishra, Sumanta Kumar Padhi
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引用次数: 0

摘要

甲酸(HCOOH)是一种很有前途的氢能源,可以更经济、更生态地用于制氢。甲酸是一种简单的羧酸,具有高浓度的氢,通常是稳定的,使其成为一种有用的氢转运体。甲酸中氢的提取通常采用催化脱氢法;这个过程释放氢气并产生二氧化碳作为副产品。与传统的制氢方法相比,该技术有几个优点,比如利用现有的甲酸处理基础设施,以及更简单地集成到不同的能源系统中。尽管如此,仍然存在一些障碍,包括提高脱氢过程的有效性和减少相关二氧化碳排放的生态后果。催化剂、反应条件、碳收集利用方法等都在进一步研究中。Ru基和cu基催化剂的开发用于催化HCOOH分解成CO2和H2是本报告的主要主题。本文的重点是HCOOH脱氢的动力学研究,包括考虑中间研究和DFT计算的机理研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Harnessing Ruthenium and Copper Catalysts for Formate Dehydrogenase Reactions

Harnessing Ruthenium and Copper Catalysts for Formate Dehydrogenase Reactions

Formic acid (HCOOH) is a promising source of hydrogen energy that can be used to produce hydrogen in a more economical and ecological way. Formic acid is a simple carboxylic acid with a high hydrogen concentration and is generally stable, making it useful as a hydrogen transporter. Catalytic dehydrogenation is usually used to extract hydrogen from formic acid; this process releases hydrogen gas and yields carbon dioxide as a byproduct. Comparing this technology to conventional hydrogen generation methods, there are several benefits, such as the utilization of the formic acid handling infrastructure already in place and the possibility of a simpler integration into different energy systems. Notwithstanding, several obstacles persist, including enhancing the effectiveness of the dehydrogenation procedure and reducing the ecological consequences of the correlated carbon dioxide discharges. Catalysts, reaction conditions, and carbon collection and utilization methodologies are all being researched further. The development of Ru and Cu-based catalysts for the catalytic breakdown of HCOOH into CO2 and H2 is the main topic of this account. Herein, the focus is on the kinetic studies of HCOOH dehydrogenation, encompassing mechanistic investigations that consider intermediate studies and DFT calculations.

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来源期刊
Chemical record
Chemical record 化学-化学综合
CiteScore
11.00
自引率
3.00%
发文量
188
审稿时长
>12 weeks
期刊介绍: The Chemical Record (TCR) is a "highlights" journal publishing timely and critical overviews of new developments at the cutting edge of chemistry of interest to a wide audience of chemists (2013 journal impact factor: 5.577). The scope of published reviews includes all areas related to physical chemistry, analytical chemistry, inorganic chemistry, organic chemistry, polymer chemistry, materials chemistry, bioorganic chemistry, biochemistry, biotechnology and medicinal chemistry as well as interdisciplinary fields. TCR provides carefully selected highlight papers by leading researchers that introduce the author''s own experimental and theoretical results in a framework designed to establish perspectives with earlier and contemporary work and provide a critical review of the present state of the subject. The articles are intended to present concise evaluations of current trends in chemistry research to help chemists gain useful insights into fields outside their specialization and provide experts with summaries of recent key developments.
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