Influence of Electrolyte Composition on the Semiconductor-Electrolyte Interface (SEI) Built-In for Enhanced Photoelectrochemical (PEC) Processes.

IF 4.6 2区 化学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Molecules Pub Date : 2025-02-14 DOI:10.3390/molecules30040885
Bartłomiej Leks, Aleksandra Parzuch, Nabila Nawaz, Justyna Widera-Kalinowska, Krzysztof Bienkowski, Renata Solarska
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Abstract

The relentless consumption of fossil fuels and soaring CO2 emissions have plunged the world into an energy and environmental crisis. As society grapples with these challenges, the demand for clean, renewable, and sustainable energy solutions has never been more urgent. However, even though many efforts have been made in this field, there is still room for improvement concerning efficiency, material stability, and catalytic enhancement regarding kinetics and selectivity of photoelectrochemical (PEC) processes. Herein, we provide the experimental proof for the enhancement of the photocurrent efficiency by the critical focus on semiconductor-electrolyte interface (SEI) properties. By tailoring electrolyte composition, researchers can unlock significant improvements in catalytic efficiency and stability, paving the way for advanced PEC technologies. In this study, we investigate the influence of electrolyte composition on SEI properties and its impact on PEC performance. By employing electrolytes enriched with carbonates, borates, sulphates, and alkali cations, we demonstrate their profound role in optimising photoelectrochemical CO2 reduction reaction (CO2RR) efficiency. Central to this work is Cu2O-an affordable, highly promising photocatalyst. While its potential is undeniable, Cu2O's inherent instability and diverse reduction products, ranging from CH3OH to CO, HCOOH, CH3COOH, and CH3CH2OH, have hindered its widespread adoption in PEC CO2 reduction (CO2RR). Our approach leverages a straightforward yet powerful electrodeposition method, enabling a deeper exploration of SEI dynamics during photocatalysis. Key parameters, such as carbonate concentration, local pH, alkali cation presence, anionic geometry, CO2 solubility, and electrolyte conductivity, are systematically investigated. The findings reveal the formation of a unique "rigid layer" at the photocatalyst surface, driven by specific cation-anion interactions. This rigid layer plays a pivotal role in boosting PEC performance, offering a new perspective on optimising, among other PEC processes, CO2RR catalytic efficiency. This profound study bridges a critical knowledge gap, shedding light on the dual influence of cations and anions on SEI properties and PEC CO2RR. By unravelling these intricate interactions, we provide a roadmap for designing next-generation PEC systems. These insights pave the way for sustainable energy advancements, inspiring innovative strategies to tackle one of the most pressing challenges of our time.

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电解质成分对用于增强光电化学 (PEC) 过程的内置半导体-电解质界面 (SEI) 的影响。
化石燃料的不断消耗和二氧化碳排放量的飙升使世界陷入了能源和环境危机。随着社会努力应对这些挑战,对清洁、可再生和可持续能源解决方案的需求从未像现在这样迫切。然而,尽管在这一领域已经做出了许多努力,但在效率、材料稳定性、动力学和选择性催化增强等方面仍有改进的空间。在此,我们通过对半导体-电解质界面(SEI)特性的关键关注,为光电流效率的提高提供了实验证明。通过调整电解质组成,研究人员可以显著提高催化效率和稳定性,为先进的PEC技术铺平道路。在本研究中,我们研究了电解质组成对SEI性能的影响及其对PEC性能的影响。通过使用富含碳酸盐、硼酸盐、硫酸盐和碱阳离子的电解质,我们证明了它们在优化光电化学CO2还原反应(CO2RR)效率方面的深远作用。这项工作的核心是cu20——一种价格合理、前景光明的光催化剂。虽然它的潜力是不可否认的,但Cu2O固有的不稳定性和多种还原产物,从CH3OH到CO, HCOOH, CH3COOH和CH3CH2OH,阻碍了它在PEC CO2还原(CO2RR)中的广泛应用。我们的方法利用了一种简单而强大的电沉积方法,可以更深入地探索光催化过程中的SEI动力学。关键参数,如碳酸盐浓度,局部pH值,碱阳离子存在,阴离子几何形状,CO2溶解度和电解质电导率,系统地进行了研究。研究结果揭示了光催化剂表面独特的“刚性层”的形成,这是由特定的阳离子-阴离子相互作用驱动的。这种刚性层在提高PEC性能方面起着关键作用,为优化其他PEC工艺(包括CO2RR催化效率)提供了新的视角。这项深刻的研究填补了一个关键的知识空白,揭示了阳离子和阴离子对SEI性质和PEC CO2RR的双重影响。通过揭示这些复杂的相互作用,我们为设计下一代PEC系统提供了路线图。这些见解为可持续能源发展铺平了道路,激发了创新战略,以应对我们这个时代最紧迫的挑战之一。
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来源期刊
Molecules
Molecules 化学-有机化学
CiteScore
7.40
自引率
8.70%
发文量
7524
审稿时长
1.4 months
期刊介绍: Molecules (ISSN 1420-3049, CODEN: MOLEFW) is an open access journal of synthetic organic chemistry and natural product chemistry. All articles are peer-reviewed and published continously upon acceptance. Molecules is published by MDPI, Basel, Switzerland. Our aim is to encourage chemists to publish as much as possible their experimental detail, particularly synthetic procedures and characterization information. There is no restriction on the length of the experimental section. In addition, availability of compound samples is published and considered as important information. Authors are encouraged to register or deposit their chemical samples through the non-profit international organization Molecular Diversity Preservation International (MDPI). Molecules has been launched in 1996 to preserve and exploit molecular diversity of both, chemical information and chemical substances.
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