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首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Thermodynamic targeting of electrocatalytic CO2 reduction: advantages, limitations, and insights for catalyst design
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Thermodynamic targeting of electrocatalytic CO2 reduction: advantages, limitations, and insights for catalyst design

机译:电催化二氧化碳减少的热力学靶向:催化剂设计的优点,限制和见解

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摘要

Herein is reported the electrocatalytic reduction of CO2 with the complex [Ni(bis-NHC)(dmpe)](2+) (1) (bis-NHC = 1,l ':3,3 '-bis(1,3-propanediyl)dibenzimidazolin-2,2 '-diylidene; dmpe = 1,2-bis(dimethylphosphino)ethane). The hydricity of 1 was previously benchmarked to be , equating to a driving force of a minimum of similar to 3.4 kcal mol(-1) for hydride transfer to CO2. While hydride transfer to CO2 is thermodynamically favorable, electrocatalytic and infrared spectroelectrochemical (IR-SEC) experiments reveal that hydride transfer is blocked by direct reactivity with CO2 in the reduced, Ni(0) state of the catalyst, yielding CO via reductive disproportionation (2CO(2) + 2e(-) = CO + CO32-) and concomitant catalyst degradation. Although thermodynamic scaling relationships provide guidance in catalyst targeting, the findings herein illustrate the fundamental kinetic challenges in balancing substrate reactivity and selectivity in the design of CO2 reduction electrocatalysts. Advantages and limitations of this scaling relationship as well as approaches by which divergence from it may be achieved are discussed, which provides insight on important parameters for future catalyst design.
机译:报道,用复合物[Ni(BIS-NHC)(DMPE)(DMPE)](2+)(1)(BIS-NHC = 1,L':3,3'(1,3-),将CO 2的电催化还原为二氧化碳丙酰胺酰基)二苯并咪唑啉-2,2,2'-二甲苯; DMPE = 1,2-双(二甲基膦基)乙烷)。先前将1的液体基准测试,其等于最小类似于3.4kcal摩尔(-1)的驱动力,用于氢化物转移至CO 2。虽然氢化物转移到CO 2是热力学良好的,但电催化和红外光谱电化学(IR-SEC)实验表明,通过在催化剂的还原的Ni(0)状态下通过直接反应性,通过还原歧化(2CO)(2co)通过直接反应性阻断氢化物转移。 (2)+ 2E( - )= CO + CO32-)和伴随的催化剂降解。尽管热力学缩放关系在催化剂靶向中提供指导,但本文的结果说明了平衡衬底反应性和CO2减少电催化剂设计中的基本动力学挑战。讨论了这种缩放关系的优点和局限以及可以实现与其分歧的方法,这提供了对未来催化剂设计的重要参数的见解。

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