Recent Progress in Photocathode Interface Engineering for Photoelectrochemical CO2 Reduction Reaction to C1 or C2+ Products

IF 22.5
Jae Hak Kim, Sung Hyun Hong, Sang Hyun Ahn, Soo Young Kim
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Abstract

Photoelectrochemical (PEC) systems harness light absorption to initiate chemical reactions, while electrochemical reactions facilitate the conversion of reactants into desired products, ensuring more efficient and sustainable energy conversion in PECs. Central to optimizing the performance of PECs was the pivotal role played by interface engineering. This intricate process involves manipulating material interfaces at the atomic or nanoscale to enhance charge transfer, improve catalytic activity, and address limitations associated with bulk materials. The careful tuning of factors such as band gap, surface energy, crystallinity, defect characteristics, and structural attributes through interface engineering led to superior catalytic efficiency. Specifically, interface engineering significantly enhanced the efficiency of semiconductor-based PECs. Engineers strategically designed heterojunctions and manipulated catalyst surface properties to optimize the separation and migration of photogenerated charge carriers, minimizing recombination losses and improving performance overall. This review categorizes the discussion into four sections focusing on the interface engineering of PECs, providing valuable insights into recent research trends. Overall, the synergy between PECs and interface engineering holds tremendous promise for advancing renewable energy technologies and addressing environmental challenges by offering innovative solutions for sustainable energy conversion and storage.

Abstract Image

光电化学CO2还原反应制备C1或C2+产物的光电阴极界面工程研究进展
光电化学(PEC)系统利用光吸收来引发化学反应,而电化学反应促进反应物转化为所需产品,确保PEC中更有效和可持续的能量转换。界面工程在优化PECs性能中起着关键作用。这个复杂的过程包括在原子或纳米尺度上操纵材料界面,以增强电荷转移,提高催化活性,并解决与大块材料相关的限制。通过界面工程对带隙、表面能、结晶度、缺陷特性和结构属性等因素进行精心调整,导致了优异的催化效率。具体来说,界面工程显著提高了基于半导体的PECs的效率。工程师们策略性地设计异质结和操纵催化剂表面性质,以优化光生载流子的分离和迁移,最大限度地减少复合损失,提高整体性能。这篇综述将讨论分为四个部分,重点关注pec的接口工程,为最近的研究趋势提供了有价值的见解。总体而言,PECs和界面工程之间的协同作用为推进可再生能源技术和解决环境挑战提供了巨大的希望,为可持续能源转换和储存提供了创新的解决方案。
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CiteScore
17.20
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