基于层状双氢氧化物的析氧反应催化剂的探索:电化学和化学计量学相结合的方法

IF 6.2 Q2 ENERGY & FUELS
Isacco Gualandi, Elisa Musella, Giulia Costa, Massimo Gazzano, Erika Scavetta, Sergio Zappoli, Domenica Tonelli
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引用次数: 0

摘要

析氧反应(OER)是水电解等各种能量转换和储存技术的关键过程。开发高效且具有成本效益的电催化剂对于实现向可持续能源解决方案过渡的设备商业化至关重要。本文采用动电位电化学沉积法在Grafoil上合成了三元层双氢氧化物(LDHs),并对其作为OER电催化剂进行了表征。采用基于实验设计的化学计量学方法来合理化基于Ni, Co和Fe的LDHs的研究工作。利用循环伏安法和x射线衍射法对沉积薄膜进行表征,以确定峰值电流和电位,以及晶体尺寸。此外,在1M KOH条件下,采用线性扫描伏安法评价了电催化剂的性能,并由此计算了Tafel斜率和起始电位。获得的数据用于推导模型,描述材料特性和电催化剂性能作为LDHs电沉积过程中使用的电解质组成的函数。这项研究为电催化剂组成与其OER活性之间的关系提供了有价值的见解,使设计更高效和可持续的能源应用电化学系统成为可能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

On the Quest for Oxygen Evolution Reaction Catalysts Based on Layered Double Hydroxides: An Electrochemical and Chemometric Combined Approach

On the Quest for Oxygen Evolution Reaction Catalysts Based on Layered Double Hydroxides: An Electrochemical and Chemometric Combined Approach

The oxygen evolution reaction (OER) is a crucial process in various energy conversion and storage technologies, such as water electrolysis. Developing efficient and cost-effective electrocatalysts is essential to achieve the commercialization of devices for the transition toward sustainable energy solutions. Herein, ternary layer double hydroxides (LDHs) are synthesized and characterized as electrocatalysts for OER using a potentiodynamic electrochemical deposition method on Grafoil. A chemometric approach based on experimental design is employed to rationalize the effort in the investigation of the LDHs which are based on Ni, Co, and Fe. The deposited films are characterized using cyclic voltammetry and X-ray diffraction to determine peak currents and potentials, and crystal size. Furthermore, the electrocatalyst performances are assessed by linear sweep voltammetry in 1M KOH from which the Tafel slope and onset potential are calculated. The obtained data are used to derive models describing the material properties and electrocatalyst performance as a function of the electrolyte composition used during the LDHs electrodeposition. This study provides valuable insights into the relationship between the electrocatalyst composition and its OER activity, enabling the design of more efficient and sustainable electrochemical systems for energy applications.

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来源期刊
CiteScore
8.20
自引率
3.40%
发文量
0
期刊介绍: Advanced Energy and Sustainability Research is an open access academic journal that focuses on publishing high-quality peer-reviewed research articles in the areas of energy harvesting, conversion, storage, distribution, applications, ecology, climate change, water and environmental sciences, and related societal impacts. The journal provides readers with free access to influential scientific research that has undergone rigorous peer review, a common feature of all journals in the Advanced series. In addition to original research articles, the journal publishes opinion, editorial and review articles designed to meet the needs of a broad readership interested in energy and sustainability science and related fields. In addition, Advanced Energy and Sustainability Research is indexed in several abstracting and indexing services, including: CAS: Chemical Abstracts Service (ACS) Directory of Open Access Journals (DOAJ) Emerging Sources Citation Index (Clarivate Analytics) INSPEC (IET) Web of Science (Clarivate Analytics).
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