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具有高电导率和出色机械强度的Ti C T MXene的快速高产无水合成

Fast and High-Yield Anhydrous Synthesis of Ti C T MXene with High Electrical Conductivity and Exceptional Mechanical Strength.

作者信息

Oh Taegon, Lee Seungjun, Kim Hyerim, Ko Tae Yun, Kim Seon Joon, Koo Chong Min

机构信息

Materials Architecturing Research Center, Korea Institute of Science and Technology, Seoul, 02792, Republic of Korea.

KU-KIST Graduate School of Converging Science and Technology, Korea University, Seoul, 02841, Republic of Korea.

出版信息

Small. 2022 Nov;18(46):e2203767. doi: 10.1002/smll.202203767. Epub 2022 Sep 7.

Abstract

2D transition metal carbides or nitrides (MXenes) have attracted considerable attention from materials scientists and engineers owing to their physicochemical properties. Currently, MXenes are synthesized from MAX-phase precursors using aqueous HF. Here, in order to enhance the production of MXenes, an anhydrous etching solution is proposed, consisting of dimethylsulfoxide as solvent with its high boiling point, NH HF as an etchant, CH SO H as an acid, and NH PF as an intercalant. The reaction temperature can be increased up to 100 °C to accelerate the etching and delamination of Ti AlC MAX crystals; in addition, the destructive side reaction of the produced Ti C T MXene is suppressed in the etchant. Consequently, the etching reaction is completed in 4 h at 100 °C and produces high-quality monolayer Ti C T with an electrical conductivity of 8200 S cm and yield of over 70%. The Ti C T MXene fabricated via this modified synthesis exhibits different surface structures and properties arising from more F-terminations than those of Ti C T synthesized in aqueous HF T. The atypical surface structure of Ti C T MXene results in an exceptionally high ultimate tensile strength (167 ± 8 MPa), which is five times larger than those of Ti C T MXenes synthesized in aqueous HF solution (31.7 ± 7.8 MPa).

摘要

二维过渡金属碳化物或氮化物(MXenes)因其物理化学性质而引起了材料科学家和工程师的广泛关注。目前,MXenes是使用氢氟酸水溶液从MAX相前驱体合成的。在此,为了提高MXenes的产量,提出了一种无水蚀刻溶液,它由高沸点的二甲基亚砜作为溶剂、NH₄HF₂作为蚀刻剂、CH₃SO₃H作为酸以及NH₄PF₆作为插层剂组成。反应温度可提高到100°C,以加速Ti₃AlC₂ MAX晶体的蚀刻和分层;此外,在蚀刻剂中抑制了所产生的Ti₃C₂T MXene的破坏性副反应。因此,蚀刻反应在100°C下4小时内完成,并产生高质量的单层Ti₃C₂T MXene,其电导率为8200 S/cm,产率超过70%。通过这种改进合成方法制备的Ti₃C₂T MXene表现出与在氢氟酸水溶液中合成的Ti₃C₂T MXene不同的表面结构和性质,因为前者具有更多的F端基。Ti₃C₂T MXene的非典型表面结构导致其具有极高的极限抗拉强度(167±8MPa),这是在氢氟酸水溶液中合成的Ti₃C₂T MXene(31.7±7.8MPa)的五倍。

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