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首页> 外文期刊>ACS Omega >Magnetron Sputter-Coated Nanoparticle MoS2 Supported on Nanocarbon: A Highly Efficient Electrocatalyst toward the Hydrogen Evolution Reaction
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Magnetron Sputter-Coated Nanoparticle MoS2 Supported on Nanocarbon: A Highly Efficient Electrocatalyst toward the Hydrogen Evolution Reaction

机译:纳米碳上磁控溅射涂覆的纳米颗粒MoS2:高效的氢生成反应电催化剂

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The design and fabrication of inexpensive highly efficient electrocatalysts for the production of hydrogen via the hydrogen evolution reaction (HER) underpin a plethora of emerging clean energy technologies. Herein, we report the fabrication of highly efficient electrocatalysts for the HER based on magnetron-sputtered MoS2 onto a nanocarbon support, termed MoS2/C. Magnetron sputtering time is explored as a function of its physiochemical composition and HER performance; increased sputtering times give rise to materials with differing compositions, i.e., Mo4+ to Mo6+ and associated S anions (sulfide, elemental, and sulfate), and improved HER outputs. An optimized sputtering time of 45 min was used to fabricate the MoS2/C material. This gave rise to an optimal HER performance with regard to its HER onset potential, achievable current, and Tafel value, which were ?0.44 (vs saturated calomel electrode (SCE)), ?1.45 mV s–1, and 43 mV dec–1, respectively, which has the highest composition of Mo4+ and sulfide (MoS2). Electrochemical testing toward the HER via drop casting MoS2/C upon screen-printed electrodes (SPEs) to electrically wire the nanomaterial is found to be mass coverage dependent, where the current density increases up to a critical mass (ca. 50 μg cm–2), after which a plateau is observed. To allow for a translation of the bespoke fabricated MoS2/C from laboratory to new industrial applications, MoS2/C was incorporated into the bulk ink utilized in the fabrication of SPEs (denoted as MoS2/C-SPE), thus allowing for improved electrical wiring to the MoS2/C and resulting in the production of scalable and reproducible electrocatalytic platforms. The MoS2/C-SPEs displayed far greater HER catalysis with a 450 mV reduction in the HER onset potential and a 1.70 mA cm–2 increase in the achievable current density (recorded at ?0.75 V (vs SCE)), compared to a bare/unmodified graphitic SPE. The approach of using magnetron sputtering to modify carbon with MoS2 facilitates the production of mass-producible, stable, and effective electrode materials for possible use in electrolyzers, which are cost competitive to Pt and mitigate the need to use time-consuming and low-yield exfoliation techniques typically used to fabricate pristine MoS2.
机译:用于通过氢气析出反应(HER)生产氢气的廉价高效电催化剂的设计和制造为众多新兴的清洁能源技术提供了基础。在本文中,我们报道了基于磁控溅射MoS2到纳米碳载体(称为MoS2 / C)上的HER高效电催化剂的制备。研究了磁控溅射时间与其物理化学组成和HER性能的关系。溅射时间的增加会导致材料组成不同,即Mo4 +至Mo6 +和相关的S阴离子(硫化物,元素和硫酸盐),并提高了HER的输出。使用45分钟的最佳溅射时间来制造MoS2 / C材料。就其HER起始电位,可达到的电流和Tafel值而言,这导致了最佳的HER性能,其为0.44(相对于饱和甘汞电极(SCE)),1.45 mV s-1和43 mV dec-1。分别具有最高的Mo4 +和硫化物(MoS2)组成。通过在丝网印刷电极(SPE)上滴铸MoS2 / C对纳米材料进行布线,对HER进行电化学测试被发现与质量覆盖率有关,电流密度增加到临界质量(约50μgcm–2) ),然后观察到平稳状态。为了将定制的MoS2 / C从实验室转换为新的工业应用,将MoS2 / C掺入了制造SPE(称为MoS2 / C-SPE)所用的本体油墨中,从而改善了电气布线到MoS2 / C中,并产生了可扩展且可重现的电催化平台。与裸露相比,MoS2 / C-SPEs显示出更大的HER催化力,其HER起始电位降低了450 mV,可实现的电流密度增加了1.70 mA cm–2(记录在?0.75 V(vs SCE)下)。 /未改性的石墨SPE。使用磁控溅射通过MoS2修饰碳的方法有助于生产可用于电解槽的可大量生产,稳定且有效的电极材料,与Pt相比具有成本竞争力,并且减轻了使用费时且产量低的需求剥落技术通常用于制造原始MoS2。

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