Electrocatalytic activity, phase kinetics, spectroscopic advancements, and photocorrosion behaviour in tantalum nitride phases

IF 16.8 1区 材料科学 Q1 CHEMISTRY, PHYSICAL Nano Energy Pub Date : 2024-07-26 DOI:10.1016/j.nanoen.2024.110046
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Abstract

The search for sustainable energy solutions has led to extensive research on new electrocatalysts that can convert electrical energy into chemical energy and back. Tantalum nitrides stand out as an intriguing class of materials, showcasing exceptional properties such as high melting points, remarkable mechanical strength, and notable resistance to corrosion. These attributes position tantalum nitrides (Ta-N) and allied phases (Ta-N-X) as compelling candidates for diverse applications, notably in electrocatalysis. While traditionally studied for their photocatalytic and photoelectrocatalytic properties, this review ventures into largely uncharted territory, illuminating the untapped potential of tantalum nitrides as electrocatalysts. Electrocatalysis assumes a pivotal role in numerous renewable energy technologies, including fuel cells and water electrolysis, which demand materials adept at catalyzing reactions efficiently. The distinctive characteristics of Ta-N phases, particularly their electrical conductivity, chemical stability, and expansive surface area, mark them as promising contenders in this arena. This comprehensive review article aims to unveil the electrocatalytic prowess of Ta-N phases, examining their catalytic performance concerning the Hydrogen Evolution Reaction (HER), Oxygen Evolution Reaction (OER), and Oxygen Reduction Reaction (ORR). Delving into recent advancements over the past five years, the article scrutinizes strategies employed to counter surface oxidation—a prevailing degradation issue that hampers activity in Ta-N phases. It also describes methodologies to mitigate photocorrosion observed during photocatalytic/photoelectrochemical (PEC) water splitting of Ta-N phases, offering potential blueprints for efficient design of their electrocatalytic counterparts. The exploration encompasses a thorough investigation into the role of various correlative spectroscopy techniques, including X-ray Photoelectron Spectroscopy (XPS), Raman spectroscopy, and Fourier-Transform Infrared Spectroscopy (FTIR), in unraveling the involvement of oxygen-related species within Ta-N systems. Furthermore, the presence of oxygen necessitates an intricate comprehension of the thermodynamic stability of different Ta-N phases, both in the presence and absence of oxygen.

This article underscores the importance of an exhaustive phase diagram analysis for the Ta-N system in the context of water splitting, critically evaluating thermochemical and constitutional data. Despite extensive research efforts, the phase diagram of the Ta-N system remains incomplete, restraining our understanding of phase stability and overall performance. This account aims to enhance understanding of Ta-N phases and provide insights that support cohesive electrocatalyst design, focusing on the key issue of long-term stability in electrocatalysis.

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关于 Ta-N 相的电催化活性、相稳定性、光谱学进展和光腐蚀性的综述
为寻求可持续能源解决方案,人们对可将电能转化为化学能的新型电催化剂进行了广泛研究。氮化钽是一类引人入胜的材料,具有熔点高、机械强度大、耐腐蚀性强等优异特性。这些特性使氮化钽(Ta-N)和相关相(Ta-N-X)成为多种应用的理想候选材料,尤其是在电催化领域。虽然传统上研究的是氮化钽的光催化和光电催化特性,但这篇综述却进入了一个基本上未知的领域,揭示了氮化钽作为电催化剂尚未开发的潜力。电催化在燃料电池和水电解等众多可再生能源技术中发挥着举足轻重的作用,这些技术需要善于高效催化反应的材料。Ta-N 相具有独特的特性,尤其是导电性、化学稳定性和广阔的比表面积,使其成为这一领域前景广阔的竞争者。这篇综合评论文章旨在揭示 Ta-N 相的电催化能力,研究它们在氢气进化反应 (HER)、氧气进化反应 (OER) 和氧气还原反应 (ORR) 方面的催化性能。文章深入探讨了过去五年来的最新进展,仔细研究了应对表面氧化的策略--表面氧化是阻碍 Ta-N 相活性的普遍降解问题。文章还介绍了在 Ta-N 相的光催化/光电化学(PEC)水分离过程中观察到的减轻光腐蚀的方法,为有效设计其电催化对应物提供了潜在的蓝图。这项研究深入探讨了各种相关光谱技术的作用,包括 X 射线光电子能谱 (XPS)、拉曼光谱和傅立叶变换红外光谱 (FTIR),以揭示 Ta-N 系统中氧相关物种的参与情况。此外,氧气的存在要求对不同 Ta-N 相在有氧和无氧情况下的热力学稳定性进行复杂的理解。本文强调了在水分离背景下对 Ta-N 系统进行详尽相图分析的重要性,并对热化学和结构数据进行了严格的评估。尽管开展了大量研究工作,Ta-N 体系的相图仍然不完整,限制了我们对相稳定性和整体性能的理解。本报告旨在加深对 Ta-N 相的理解,并提供支持内聚电催化剂设计的见解,重点关注电催化中长期稳定性这一关键问题。
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来源期刊
Nano Energy
Nano Energy CHEMISTRY, PHYSICAL-NANOSCIENCE & NANOTECHNOLOGY
CiteScore
30.30
自引率
7.40%
发文量
1207
审稿时长
23 days
期刊介绍: Nano Energy is a multidisciplinary, rapid-publication forum of original peer-reviewed contributions on the science and engineering of nanomaterials and nanodevices used in all forms of energy harvesting, conversion, storage, utilization and policy. Through its mixture of articles, reviews, communications, research news, and information on key developments, Nano Energy provides a comprehensive coverage of this exciting and dynamic field which joins nanoscience and nanotechnology with energy science. The journal is relevant to all those who are interested in nanomaterials solutions to the energy problem. Nano Energy publishes original experimental and theoretical research on all aspects of energy-related research which utilizes nanomaterials and nanotechnology. Manuscripts of four types are considered: review articles which inform readers of the latest research and advances in energy science; rapid communications which feature exciting research breakthroughs in the field; full-length articles which report comprehensive research developments; and news and opinions which comment on topical issues or express views on the developments in related fields.
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