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Interfacial Scaffolding Preparation of Hierarchical PBA-Based Derivative Electrocatalysts for Efficient Water Splitting

机译:基于分层PBA的衍生物电催化剂的界面脚手架制备用于有效的水分裂

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摘要

The development of highly efficient and durable electrocatalysts is crucial for overall water splitting. Herein, the in situ scaffolding formation of 3D Prussian blue analogues (PBAs) on a variety of 2D or 1D metal hydroxides/oxides to fabricate hierarchical nanostructures is first demonstrated. Typically, cobalt hydroxide or oxide nanoarrays are used as the precursor and structural oriented template for the subsequent growth of 3D PBA nanocubes. The mechanism study reveals that the interfacial scaffolding process can be reversibly controlled via the in situ ion exchange process with adjusting coordination ions. Thus, the facile, versatile strategy can extend to successfully fabricate a variety of hierarchical PBA-based nanostructures including on cobalt fluoride hydroxide, copper hydroxide, monometal or bimetal nickel-cobalt hydroxides, cobalt oxide, and manganese oxide nanosheets with structural tailor-ability and chemical diversity. More interestingly, the metal nitride derivatives obtained via controlled calcination process exhibit good electrocatalytic activity for water splitting with low overpotentials, and remarkable durability for 1200 h, thanks to the superior intrinsic activity of bimetal nature and the scrupulous hierarchical structure. This versatile strategy provides a paradigm for rational design of PBA-based functional nanomaterials, which is highly promising in energy conversion, storage, and electrocatalytic fields.
机译:高效和耐用的电催化剂的开发对于整个水分裂至关重要。这里,首先说明了在各种2D或1D金属氢氧化物/氧化物上的3D普鲁士蓝色类似物(PBA)的原位脚手架形成,以制造分级纳米结构。通常,氢氧化钴或氧化物纳米载体用作前体和结构取向模板,用于随后的3D PBA纳米孔生长。该机制研究表明,通过调节配位离子,可以通过原位离子交换过程可逆地控制界面脚手架过程。因此,容易的通用策略可以延伸以成功制造各种基于PBA的基于PBA的纳米结构,包括氟化钴氢氧化物,氢氧化铜,单金属或双金属氢氧化物,氧化钴和锰氧化物纳米液,具有结构裁缝能力和化学多样性。更有意义地,通过受控煅烧过程获得的金属氮化物衍生物具有良好的电催化活性,用于具有低过电位的水分裂,并且由于双通性质和微薄的等级结构的优越内在活性,具有显着的耐久性1200小时。这种多功能策略为PBA的官能纳米材料的合理设计提供了一种范式,这在能量转换,储存和电催化领域具有高度前景。

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  • 来源
    《Advanced energy materials》 |2019年第5期|1802939.1-1802939.11|共11页
  • 作者单位

    Shandong Univ Minist Educ Sch Chem & Chem Engn Key Lab Colloid & Interface Chem Jinan 250100 Shandong Peoples R China|Shandong Univ Minist Educ Key Lab Liquid Solid Struct Evolut & Proc Mat Jinan 250100 Shandong Peoples R China;

    Shandong Univ Minist Educ Sch Chem & Chem Engn Key Lab Colloid & Interface Chem Jinan 250100 Shandong Peoples R China|Shandong Univ Minist Educ Key Lab Liquid Solid Struct Evolut & Proc Mat Jinan 250100 Shandong Peoples R China;

    Shandong Univ Minist Educ Sch Chem & Chem Engn Key Lab Colloid & Interface Chem Jinan 250100 Shandong Peoples R China|Shandong Univ Minist Educ Key Lab Liquid Solid Struct Evolut & Proc Mat Jinan 250100 Shandong Peoples R China;

    Shandong Univ Minist Educ Sch Chem & Chem Engn Key Lab Colloid & Interface Chem Jinan 250100 Shandong Peoples R China|Shandong Univ Minist Educ Key Lab Liquid Solid Struct Evolut & Proc Mat Jinan 250100 Shandong Peoples R China;

    Liaocheng Univ Sch Chem & Chem Engn Liaocheng 252000 Peoples R China;

    Shandong Univ Minist Educ Sch Chem & Chem Engn Key Lab Colloid & Interface Chem Jinan 250100 Shandong Peoples R China|Shandong Univ Minist Educ Key Lab Liquid Solid Struct Evolut & Proc Mat Jinan 250100 Shandong Peoples R China;

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  • 正文语种 eng
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  • 关键词

    electrocatalysis; hydrogen evolution reaction; oxygen evolution reaction; Prussian blue analogue; water splitting;

    机译:电殖分析;氢气进化反应;氧气进化反应;普鲁士蓝色模拟;水分裂;

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