Dual-Phase MoS2/Mxene/CNT Ternary Nanohybrids for Efficient Electrocatalytic Hydrogen Evolution

材料科学 催化作用 二硫化钼 石墨烯 化学工程 成核 分解水 三元运算 电化学 重量分析 纳米技术 无机化学 化学 光催化 电极 复合材料 有机化学 物理化学 计算机科学 工程类 程序设计语言
作者
Fei Yao,Sichen Wei,Yu Fu,Maomao Liu,Yannick Iniatius Gata,Qinrui Liu,Huamin Li
出处
期刊:Meeting abstracts [Institute of Physics]
卷期号:MA2022-02 (8): 644-644
标识
DOI:10.1149/ma2022-028644mtgabs
摘要

Hydrogen (H2) shows great potential in reducing greenhouse gas emissions and improving energy efficiency due to its environmentally friendly nature and high gravimetric energy density [1]. It can be generated via electrochemical water splitting based on the hydrogen evolution reaction (HER). It is well known that Pt-group metals (PGMs) are excellent catalysts for HER, but their broad adoption is limited by high cost and scarcity. Recently, two-dimensional (2D) molybdenum disulfide (MoS2) is regarded as a promising alternative to PGMs due to its large surface area, rich active sites, and ideal hydrogen adsorption energy [2]. However, its practical application is hindered by the intrinsically low electrical conductivity arising from the semiconducting nature of2H phase MoS2[3]. On the other hand, 2D Ti3C2 MXene with high electrical conductivity, excellent hydrophilicity, and large interlayer distance has been intensively investigated in energy storage devices lately[4]. Compared with charge-neutral graphene, MXene exhibits a negatively charged surface due to the existence of numerous surface functional groups (-OH, -O, -F, etc.), which not only enhances the dispersion of MoS2 precursors but also promotes MoS2 nucleation, making it a superior template for MoS2 synthesis. Nevertheless, undesired oxidation of MXene occurs in aqueous solutions [5], reducing the overall catalyst stability. To address the above issues, we employed a one-step solvothermal method using DI water/DMF as bisolvent and constructed metallic 1T phase-enriched MoS2/MXene composite as HER catalyst. The advantages of using bisolvent lie in twofold: (i) suppress undesired oxidation and thus preserve high conductivity of MXene framework, and (ii) improve MoS2 electrical conductivity by inducing 2H to 1T phase transition. The introduction of metallic 1T phase MoS2 is triggered by ion intercalation. Specifically, during the synthesis, both ammonium molybdate (Mo precursor) and DMF can act as abundant sources of NH4+ which can intercalate into MoS2 layers. This process stimulated charge imbalance between Mo3+ and Mo4+ and led to the S plane sliding [6]. As a result, crystal structure distortion and therefore phase transformation of MoS2 occur along with interlayer distance expansion. To further improve the catalyst conductivity, carbon nanotubes (CNTs)were introduced into the binary composite as crosslinks to bridge the 2D islands. As a result, a low overpotential (169 mV) and Tafel slope (51 mV/dec) along with the highest turnover frequency (7 s-1 at -0.23V vs. RHE) and an ultralong lifetime (72 hours) was successfully achieved. The origin of the outstanding HER performance of the ternary composite can be ascribed to: (i) the prevention of 2D layer restacking as well as the enlarged surface area due to the 2D/2D MoS2/MXene integration and ion intercalation. This will promote the contact between electrolyte and catalyst, resulting in an increased hydrogen ion adsorption; (ii)the vertical growth of MoS2 flakes on MXene template which increases the exposure of MoS2 edge planes, maximizing the total number of active sites; (iii) the synergistically enhanced conductivity because of the formation of hybrid 1D/2D conductive network via the integration of 1T-phase metallic MoS2, conductive MXene backbone with suppressed oxidation along with the CNT crosslinks, minimizing the charge transfer resistance at the electrode/electrolyte interface. This work demonstrated an effective strategy for low-dimensional material structure-property engineering with the aim of optimizing the HER performance which will shed light on the development of the next-generation PGM-free HER electrocatalysts.
最长约 10秒,即可获得该文献文件

科研通智能强力驱动
Strongly Powered by AbleSci AI
科研通是完全免费的文献互助平台,具备全网最快的应助速度,最高的求助完成率。 对每一个文献求助,科研通都将尽心尽力,给求助人一个满意的交代。
实时播报
1秒前
拼搏的帽子完成签到 ,获得积分10
2秒前
英勇思山发布了新的文献求助10
2秒前
3秒前
3秒前
肉丝儿完成签到,获得积分10
3秒前
淡扫峨眉发布了新的文献求助10
4秒前
4秒前
wu完成签到,获得积分10
5秒前
笑而不语完成签到 ,获得积分10
5秒前
酱紫发布了新的文献求助10
5秒前
咖喱完成签到,获得积分10
5秒前
6秒前
科研通AI2S应助11采纳,获得10
6秒前
连垣发布了新的文献求助10
8秒前
菠萝菠萝完成签到,获得积分10
8秒前
科目三应助行至采纳,获得30
8秒前
乐乐应助Kepler采纳,获得10
8秒前
活泼的筝完成签到,获得积分10
8秒前
那时花开发布了新的文献求助10
9秒前
9秒前
9秒前
sulin完成签到,获得积分10
10秒前
10秒前
11秒前
11秒前
淡扫峨眉完成签到,获得积分10
11秒前
11秒前
借过123完成签到,获得积分10
12秒前
小羊呀发布了新的文献求助10
12秒前
12秒前
李爱国应助自动挡赛车手采纳,获得10
12秒前
12秒前
12秒前
希望天下0贩的0应助lax采纳,获得10
14秒前
梦回发布了新的文献求助10
14秒前
幻梦发布了新的文献求助10
14秒前
失眠的小熊猫完成签到,获得积分10
14秒前
14秒前
tion66发布了新的文献求助10
15秒前
高分求助中
(应助此贴封号)【重要!!请各用户(尤其是新用户)详细阅读】【科研通的精品贴汇总】 10000
Principles of town planning: translating concepts to applications 1000
2016 Venous Blood Study (VBS) (Final V3.0) 510
Management and the Arts 510
Matrix Methods in Data Mining and Pattern Recognition Second Edition 510
The Effective Clinical Neurologist 3ed 500
The Great Hymn to Šamaš 500
热门求助领域 (近24小时)
化学 材料科学 医学 生物 纳米技术 工程类 有机化学 化学工程 生物化学 计算机科学 内科学 物理 复合材料 催化作用 细胞生物学 无机化学 光电子学 物理化学 电极 基因
热门帖子
关注 科研通微信公众号,转发送积分 7699388
求助须知:如何正确求助?哪些是违规求助? 9258731
关于积分的说明 20015900
捐赠科研通 7274551
什么是DOI,文献DOI怎么找? 3293505
关于科研通互助平台的介绍 2448957
邀请新用户注册赠送积分活动 2299794