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PdAg 双金属纳米合金修饰石墨烯:具有空前电催化、催化和传感活性的纳米杂化材料。

PdAg Bimetallic Nanoalloy-Decorated Graphene: A Nanohybrid with Unprecedented Electrocatalytic, Catalytic, and Sensing Activities.

机构信息

Department of Chemistry , University of Kashmir , Srinagar 190006 , J&K , India.

Department of Chemistry , Indian Institute of Technology Delhi , New Delhi 110016 , India.

出版信息

ACS Appl Mater Interfaces. 2018 May 16;10(19):16376-16389. doi: 10.1021/acsami.8b00510. Epub 2018 May 2.

Abstract

Recent reports about the promising and tunable electrocatalytic activity and stability of nanoalloys have stimulated an intense research activity toward the design and synthesis of homogeneously alloyed novel bimetallic nanoelectrocatalysts. We herein present a simple one-pot facile wet-chemical approach for the deposition of high-quality bimetallic palladium-silver (PdAg) homogeneous nanoalloy crystals on reduced graphene (Gr) oxide sheets. Morphological, structural, and chemical characterizations of the so-crafted nanohybrids establish a homogeneous distribution of 1:1 PdAg nanoalloy crystals supported over reduced graphene oxide (PdAg-Gr). The PdAg-Gr nanohybrids exhibit outstanding electrocatalytic, catalytic, and electroanalytical performances. The PdAg-Gr samples were found to exhibit exceptional durability when subjected to repeated potential cycles or long-term electrolysis. In the CVs recorded for fuel cell reactions, viz. methanol oxidation reaction and oxygen reduction reaction, and for detoxification of environmental pollutants, viz. electroreduction of methyl iodide and chloroacetonitrile over PdAg-Gr with potential sweep rate of 25 mVs, the peak potentials were observed to be just -0.221, -0.297, (vs Ag/AgCl, 3 M KCl) -1.508, and -1.189 V (vs Fc/Fc), respectively. The potential of PdAg-Gr nanohybrid for simultaneous and sensitive electrochemical sensing and estimation of hydroxybenzene isomers with very low detection limits (0.05 μM for hydroquinone, 0.06 μM for catechol, 6.7 nM for 4-aminophenol, and 13.7 nM for 2-aminophenol) is demonstrated. Additionally, PdAg-Gr was observed to offer excellent solution-phase catalytic performance in bringing about the reduction of notorious environmental pollutant 4-nitrophenol to pharmaceutically important 4-aminophenol with an apparent rate constant ( k) of 3.106 × 10 s and a normalized rate constant ( k) of 6.21 × 10 s g. The presented synthetic scheme besides being high yielding, low cost, and easy to carry out results in the production of PdAg-Gr nanohybrids with stability and activity significantly better than most of the nanomaterials purposefully designed and testified so far by various groups.

摘要

最近有关纳米合金具有有前途和可调谐的电催化活性和稳定性的报道激发了人们对设计和合成均匀合金的新型双金属纳米电催化剂的强烈研究兴趣。在此,我们提出了一种简单的一锅简便湿化学方法,用于在还原氧化石墨烯(Gr)片上沉积高质量的钯银(PdAg)均匀纳米合金晶体。所制备的纳米杂化物的形态、结构和化学特性确立了负载在还原氧化石墨烯(PdAg-Gr)上的 1:1PdAg 纳米合金晶体的均匀分布。PdAg-Gr 纳米杂化物表现出出色的电催化、催化和电分析性能。PdAg-Gr 样品在经受重复电位循环或长期电解时表现出异常的耐久性。在记录燃料电池反应(即甲醇氧化反应和氧还原反应)和环境污染物解毒(即碘化甲基和氯乙腈的电化学还原)的 CVs 中,使用 25 mV/s 的电位扫描速率,观察到的峰值电位仅为-0.221、-0.297(相对于 Ag/AgCl,3 M KCl)-1.508 和-1.189 V(相对于 Fc/Fc)。PdAg-Gr 纳米杂化物的电势用于同时和灵敏地电化学感应和估计具有非常低检测限(对苯二酚为 0.05 μM,邻苯二酚为 0.06 μM,对氨基酚为 6.7 nM,2-氨基酚为 13.7 nM)的羟基苯异构体。此外,PdAg-Gr 被观察到在将臭名昭著的环境污染物 4-硝基苯酚还原为具有重要药用价值的 4-氨基酚方面提供了出色的溶液相催化性能,表观速率常数(k)为 3.106×10 s,归一化速率常数(k)为 6.21×10 s g。所提出的合成方案除了产率高、成本低且易于实施之外,还导致 PdAg-Gr 纳米杂化物的稳定性和活性明显优于迄今为止由各个小组专门设计和测试的大多数纳米材料。

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