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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Eutectic solvent-mediated selective synthesis of Cu–Sb–S-based nanocrystals: combined experimental and theoretical studies toward highly efficient water splitting
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Eutectic solvent-mediated selective synthesis of Cu–Sb–S-based nanocrystals: combined experimental and theoretical studies toward highly efficient water splitting

机译:共晶溶剂介导的Cu-SB-S基纳米晶体的选择性合成:高效水分裂的组合实验和理论研究

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摘要

Recently, emerging Cu–Sb–S-based compounds have been identified as an attractive candidate for photovoltaic (PV) applications because of their high natural abundance, eco-friendly features and typical phase-dependent characteristics. Herein, a simple eutectic solvent-mediated (choline chloride/ethylene glycol) synthetic approach for newly debuted Cu–Sb–S-based nanocrystals (NCs) with phase-selective properties is presented. This combination of material and preparation method may promote the exchange of carriers by avoiding a steric hindrance for a facile charge transport encountered in NCs prepared using amines, thiols, hydrazines and phosphine oxide solvents. A temperature-dependent study of an ethaline-based deep eutectic solvent (DES) is conducted to elucidate the characteristics of associated chemical shifts and vibrations and to determine changes in hydrogen bonding interactions using structural and thermal analytical techniques. The results suggest that ethaline is a strong candidate as a greener solvent for the synthesis of NCs at relatively low temperatures. The electronic structures of all four Cu–Sb–S phases—Cu _(3) SbS _(4) , CuSbS _(2) , Cu _(3) SbS _(3) , and Cu _(12) Sb _(4) S _(13) —were simulated using the Vienna ab initio Simulation (VASP) code, projector augmented-wave (PAW) potentials and the hybrid functional method (HSE 06) and using density functional theory for combined theoretical and experimental studies. Discrepancies between the experimental and theoretical bandgap values of 0.29, 0.18, 0.12 and 0.16 eV were observed for Cu _(3) SbS _(4) , CuSbS _(2) , Cu _(3) SbS _(3) and Cu _(12) Sb _(4) S _(13) compounds, respectively. A photoelectrochemical (PEC) water reduction system with a Mo/photoelectrode/CdS/Pt/electrolyte configuration generated a cathodic photocurrent of ?1.28 and ?2.72 mA cm ~(?2) for Cu _(3) SbS _(4) and CuSbS _(2) electrodes, respectively, at 0 V versus the reversible hydrogen electrode (V _(RHE) ) under AM 1.5 G illumination, demonstrating the great potential of NCs prepared via eutectic solvent-mediated synthesis. This is the first successful attempt to apply eutectic solvent-mediated Cu–Sb–S NCs for solar driven H _(2) production. These outcomes suggest that designing proper functional materials through the application of greener synthesis strategies can improve water-splitting performance and would help meet the perpetual technological need for greener methods.
机译:近日,新兴-S基于铜锑化合物已被确定为光伏(PV)应用的有吸引力的候选者,因为其高自然丰度,环保功能和典型相依赖的特性。在本文中,一个简单的共晶溶剂介导的(氯化胆碱/乙二醇)合成为新开张--S铜基Sb的纳米晶体(NCS)具有相位选择特性的方法,提出。材料及其制备方法的这种组合可以促进载流子的通过避免在NC的遇到容易电荷输送空间位阻的交换使用胺,硫醇,肼和氧化膦的溶剂制备。基于ethaline深共晶溶剂(DES)的温度相关的研究以阐明相关联的化学位移和振动的特性,并确定在使用的结构和热分析技术氢键相互作用的变化。结果表明,ethaline是一个强有力的候选作为NC的在相对低的温度下合成一个绿色溶剂。所有四个铜的SbS相铜_(3)SB的电子结构_(4),CuSbS _(2),铜_(3)的SbS _(3),及Cu _(12)的Sb _( 4)S _(13)使用所述维也纳AB -were模拟仿真从头(VASP)码,投影放大波(PAW)电位和混合功能的方法(HSE 06),并使用密度泛函理论用于组合理论和实验研究。 0.29,0.18,0.12和0.16电子伏特,观察铜_(3)的SbS实验和理论能带隙值之间的差异_(4),CuSbS _(2),铜_(3)的SbS _(3)和Cu _ (12)的Sb _(4)s _(13)的化合物,分别。光电化学(PEC)水还原系统与沫/光电极/ CDS /铂/电解质配置生成的1.28阴极光电流和?2.72毫安厘米〜(λ2)对Cu _(3)的SbS _(4)和CuSbS _(2)的电极,分别为0V相对于可逆氢电极(V _(RHE))下AM 1.5克照明,表明NC的巨大潜力通过共晶溶剂介导的合成制备。这是应用共晶溶剂介导的Cu-Sb的-S NC的太阳能驱动ħ_(2)生产首次成功尝试。这些结果表明,通过更环保的合成策略应用设计适当的功能材料可以提高水分解性能,并有助于满足对更环保的方法永久的技术需要。

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    Optoelectronics Convergence Research Center and Department of Materials Science and Engineering Chonnam National University;

    Optoelectronics Convergence Research Center and Department of Materials Science and Engineering Chonnam National University;

    Department of Physics and Astronomy Wright Center for Photovoltaic Innovation and Commercialization University of Toledo Toledo;

    Department of Physics and Astronomy Wright Center for Photovoltaic Innovation and Commercialization University of Toledo Toledo;

    Optoelectronics Convergence Research Center and Department of Materials Science and Engineering Chonnam National University;

    Department of Chemical Engineering Chonnam National University;

    Future Agricultural Research Division Water Resource and Environment Research Group Rural Research Institute Korea Rural Community Corporation Ansan-Si Korea;

    Department of Chemical Engineering Chonnam National University;

    Analytical Chemistry and Material Science Research Laboratory Department of Chemistry Shivaji University;

    Optoelectronics Convergence Research Center and Department of Materials Science and Engineering Chonnam National University;

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  • 正文语种 eng
  • 中图分类 工程材料学;
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