论文标题
大面积PTTE2薄膜的低温合成和电催化应用
Low-temperature synthesis and electrocatalytic application of large-area PtTe2 thin films
论文作者
论文摘要
在过去的10年中,过渡金属二核苷(TMD)的合成一直是2D纳米材料研究的主要重点,但是,这项研究的一小部分集中在过渡金属二硫代硫代酯上。特别是,尽管它在催化,光子学和旋转三位体中的潜在应用,但很少研究纳米级铂(PTTE2)(PTTE2)。在发表的报告中,多数人检查了化学蒸气转运(CVT)种植晶体的机械脱落薄片。尽管这种生产方法是基本研究的理想选择,但它是非常重要的资源密集型,因此使此过程不适合大规模应用。在本报告中,描述了通过固相前体膜反应的PTTE2薄膜的合成。这为大区域,厚度控制的PTTE2提供了一种生产方法,适用于一系列应用。这些多晶PTTE2膜在低至450摄氏度的温度下生长,显着低于CVT合成方法中使用的典型温度。为了研究其潜在的适用性,这些膜被检查为氢进化反应(HE)和氧还原反应(ORR)的电催化剂。这些膜显示出令人鼓舞的催化行为,但是,发现PTTE2在ORR条件下会进行化学转化向化学计量硫酸盐化合物。这项研究表明,PTTE2稳定且对她非常有用时,该特性不适用于ORR,而ORR经历了根本不同的机制。这项研究扩大了我们对TMD的电催化的了解。
The synthesis of transition metal dichalcogenides (TMDs) has been a primary focus for 2D nanomaterial research over the last 10 years, however, only a small fraction of this research has been concentrated on transition metal ditellurides. In particular, nanoscale platinum ditelluride (PtTe2) has rarely been investigated, despite its potential applications in catalysis, photonics and spintronics. Of the reports published, the majority examine mechanically-exfoliated flakes from chemical vapor transport (CVT) grown crystals. While this production method is ideal for fundamental studies, it is very resource intensive therefore rendering this process unsuitable for large scale applications. In this report, the synthesis of thin films of PtTe2 through the reaction of solid-phase precursor films is described. This offers a production method for large-area, thickness-controlled PtTe2, suitable for a range of applications. These polycrystalline PtTe2 films were grown at temperatures as low as 450 degC, significantly below the typical temperatures used in the CVT synthesis methods. To investigate their potential applicability, these films were examined as electrocatalysts for the hydrogen evolution reaction (HER) and oxygen reduction reaction (ORR). The films showed promising catalytic behavior, however, the PtTe2 was found to undergo chemical transformation to a substoichiometric chalcogenide compound under ORR conditions. This study shows while PtTe2 is stable and highly useful for HER, this property does not apply to ORR, which undergoes a fundamentally different mechanism. This study broadens our knowledge of the electrocatalysis of TMDs.