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首页> 外文期刊>ACS nano >Carbon Nanotube-Supported MoSe2 Holey Flake:Mo2C Ball Hybrids for Bifunctional pH-Universal Water Splitting
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Carbon Nanotube-Supported MoSe2 Holey Flake:Mo2C Ball Hybrids for Bifunctional pH-Universal Water Splitting

机译:碳纳米管支撑的MOSE2 HOLY薄片:双官能pH通用水分裂的MO2C球杂交机

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摘要

The design of cost-effective and efficient electrocatalysts for both hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) is pivotal for the molecular hydrogen (H-2) production from electrochemical water splitting as a future energy source. Herein, we show that the hybridization between multiple HER- and OER-active components is effective for the design and realization of bifunctional electrocatalysts for universal water splitting, i.e., in both acidic and alkaline media. Our strategy relies on the production and characterization of MoSe2 holey flake:Mo2C ball hybrids supported by single-walled carbon nanotube (SWCNT) electrocatalysts. Flakes of MoSe2 are produced through hydrogen peroxide (H2O2)-aided liquid phase exfoliation (LPE), which promotes both the exfoliation of the materials and the formation of nanopores in the flakes via chemical etching. The amount of H2O2 in the solvent used for the exfoliation process is optimized to obtain ideal high ratio between edge and basal sites ratio, i.e., high-number of electrocatalytic sites. The hybridization of MoSe2 flakes with commercial ball-like shaped Mo2C crystals facilitates the Volmer reaction, which works in both acidic and alkaline media. In addition, the electrochemical coupling between SWCNTs (as support) and MoSe2:Mo2C hybrids synergistically enhances both HER- and OER-activity of the native components, reaching high eta(10) in acidic and alkaline media (0.049 and 0.089 V for HER in 0.5 M H2SO4 and 1 M KOH, respectively; 0.197 and 0.241 V for OER in 0.5 M H2SO4 and 1 M KOH, respectively). The exploitation of the synergistic effects occurring between multicomponent electrocatalysts, coupled with the production of the electrocatalysts themselves through scalable and cost-effective solution-processed manufacturing techniques, is promising to scale-up the production of H-2 via efficient water splitting for the future energy portfolio.
机译:用于氢化反应(她)和氧气进化反应(oer)的成本效益和有效的电催化剂的设计是从电化学水分作为未来能源的分子氢(H-2)产生的枢转。在此,我们表明,多个HER-和OER-活性组分之间的杂交对于用于通用水分裂的双官能电催化剂的设计和实现是有效的,即酸性和碱性介质。我们的策略依赖于MOSE2 HOLY薄片的生产和表征:由单壁碳纳米管(SWCNT)电催化剂负载的MO2C球杂交体。通过过氧化氢(H 2 O 2) - 求液相剥离(LPE)产生的薄膜产生,其促进了材料的剥离和通过化学蚀刻在薄片中形成纳米孔。优化用于剥离过程的溶剂中H 2 O 2的量以获得边缘和基部位点之间的理想高比率,即高量的电催化位点。使用商业球状MO2C晶体的MOSE2薄片的杂交有助于Volmer反应,其在酸性和碱性介质中工作。另外,SWCNT(作为载体)和MOSE2:MO2C杂种之间的电化学耦合协同增强了天然组分的eer-和oer-overty,在酸性和碱性介质(0.049和0.089V)中达到高ETA(10) 0.5M H 2 SO 4和1 M KOH,分别为0.197和0.241V,分别为0.5M H 2 SO 4和1M KOH)。利用在多组分电催化剂之间发生的协同作用,通过可扩展且经济高效的解决方案加工制造技术加上电催化剂本身的产生,很有希望通过未来的有效水分裂来扩大H-2的生产能源组合。

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