Synthesis of 1T WSe<sub>2</sub> on an Oxygen-Containing Substrate Using a Single Precursor.

Park, Young Jin; So, Hee-Soo; Hwang, Hyuntae; Jeong, Da Sol; Lee, Hoon Ju; Lim, Jongsun; Kim, Chang Gyoun; Shin, Hyeon Suk · ACS Nano · 2022

basic_science · Level V

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Abstract

The metallic property of metastable 1T' WSe<sub>2</sub> and its promising catalytic performance have attracted considerable interest. A hot injection method has been used to synthesize 1T' WSe<sub>2</sub> with a three-dimensional morphology; however, this method requires two or more precursors and long-chain ligands, which inhibit the catalytic performance. Here, we demonstrate the synthesis of 1T' WSe<sub>2</sub> on a substrate by a simple heating-up method using a single precursor, tetraethylammonium tetraselenotungstate [(Et<sub>4</sub>N)<sub>2</sub>WSe<sub>4</sub>]. The triethylamine produced after the reaction is an electron donor that yields negatively charged WSe<sub>2</sub>, which is stabilized by triethylammonium cations as intercalants between layers and induces 1T' WSe<sub>2</sub>. The purity of 1T' WSe<sub>2</sub> is higher on oxygen-containing crystalline substrates than amorphous substrates because the strong adhesion between WSe<sub>2</sub> and the substrate can produce sufficient triethylammonium (TEA) intercalation. Among the oxygen-containing crystal substrates, the substrate with a lower lattice mismatch with 1T' WSe<sub>2</sub> showed higher 1T' purity due to the uniform TEA intercalation. Furthermore, 1T' WSe<sub>2</sub> on carbon cloth exhibited a more enhanced catalytic performance in the hydrogen evolution reaction (197 mV at 10 mA/cm<sup>2</sup>) than has been reported previously.