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A vast exploration of improvising synthetic strategies for enhancing the OER kinetics of LDH structures: a review

机译:浅谈提高综合策略,以加强LDH结构的oer动力学:综述

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In the last few decades, layered double hydroxide (LDH) based materials have been given a lot of attention to the researchers due to significant advances in enabling efficient oxygen evolution. Their exceptional layered structure, sole electronic structure, and high specific surface area, makes them to show good OER catalytic performance. The catalytic performances of LDHs are largely governed by their composition, morphology, and intercalated anions, which can be produced via exfoliation processes and different synthetic methods. Although LDH materials have enormous advantages in energy-related applications, there are still some inherent drawbacks in the OER process that need to be overcome for long-term usage. These drawbacks in the internal properties of LDHs are attributed to their low electrical conductivity and structural collapse, particularly during the exfoliation process, making the OER kinetics unpredictable. To overcome these drawbacks, researchers have developed many strategies recently, and these are (i) nano-structuring; (ii) the addition of cations; (iii) anion exchange; (iv) the synthesis of materials with conductive supports; and (v) vacancy creation. Hence, this review ultimately focuses on how to overcome the extensive issues faced by LDHs in terms of synthetic and exfoliation methods and discusses various strategies developed in recent years in the field of the electrocatalytic water-based oxygen evolution reaction.
机译:在过去的几十年里,层状双氢氧化物(LDH)基材料因其在有效析氧方面的重大进展而受到了研究人员的广泛关注。其独特的层状结构、唯一的电子结构和高比表面积,使其表现出良好的OER催化性能。LDH的催化性能在很大程度上取决于其组成、形态和插层阴离子,这些阴离子可以通过剥离过程和不同的合成方法生成。虽然LDH材料在与能源相关的应用中具有巨大的优势,但OER工艺仍存在一些固有的缺点,需要长期使用才能克服。LDH内部特性的这些缺陷归因于其低导电性和结构崩塌,尤其是在剥离过程中,使得OER动力学不可预测。为了克服这些缺点,研究人员最近开发了许多策略,包括(i)纳米结构;(ii)添加阳离子;(三)阴离子交换;(iv)合成具有导电载体的材料;以及(v)空缺的产生。因此,本综述最终集中于如何克服LDH在合成和去角质方法方面面临的广泛问题,并讨论了近年来在电催化水基析氧反应领域发展的各种策略。

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    CSIR Cent Electrochem Res Inst CECRI Mat Chem Lab Energy Environm &

    Catalysis Electrochem Proc Engn EPE Div Karaikkudi 630003 Tamil Nadu India;

    CSIR Cent Electrochem Res Inst CECRI Mat Chem Lab Energy Environm &

    Catalysis Electrochem Proc Engn EPE Div Karaikkudi 630003 Tamil Nadu India;

    CSIR Cent Electrochem Res Inst CECRI Mat Chem Lab Energy Environm &

    Catalysis Electrochem Proc Engn EPE Div Karaikkudi 630003 Tamil Nadu India;

    CSIR Cent Electrochem Res Inst CECRI Mat Chem Lab Energy Environm &

    Catalysis Electrochem Proc Engn EPE Div Karaikkudi 630003 Tamil Nadu India;

    CSIR Cent Electrochem Res Inst CECRI Mat Chem Lab Energy Environm &

    Catalysis Electrochem Proc Engn EPE Div Karaikkudi 630003 Tamil Nadu India;

    CSIR Cent Electrochem Res Inst CECRI Mat Chem Lab Energy Environm &

    Catalysis Electrochem Proc Engn EPE Div Karaikkudi 630003 Tamil Nadu India;

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  • 正文语种 eng
  • 中图分类 工程材料学;
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