Discovery of a Wurtzite-like Cu<sub>2</sub>FeSnSe<sub>4</sub> Semiconductor Nanocrystal Polymorph and Implications for Related CuFeSe<sub>2</sub> Materials.

Tappan, Bryce A; Chu, Weibin; Mecklenburg, Matthew; Prezhdo, Oleg V; Brutchey, Richard L · ACS Nano · 2021

basic_science · Level V

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Abstract

I<sub>2</sub>-II-IV-VI<sub>4</sub> and I-III-VI<sub>2</sub> semiconductor nanocrystals have found applications in photovoltaics and other optoelectronic technologies because of their low toxicity and efficient light absorption into the near-infrared. Herein, we report the discovery of a metastable wurtzite-like polymorph of Cu<sub>2</sub>FeSnSe<sub>4</sub>, a member of the I<sub>2</sub>-II-IV-VI<sub>4</sub> family of semiconductors containing only earth-abundant metals. Density functional theory calculations on this metastable polymorph of Cu<sub>2</sub>FeSnSe<sub>4</sub> indicate that it may be a superior semiconductor for solar energy and optoelectronics applications compared to the thermodynamically preferred stannite polymorph, since the former displays a sharper dispersion of energy levels near the conduction band minimum that can enhance electron mobility and suppress hot electron cooling. The experimental optical band gap was measured by the inverse logarithmic derivative method to be direct, in agreement with theory, and in the range of 1.48-1.59 eV. Mechanistic studies reveal that this metastable phase derives from intermediate Cu<sub>3</sub>Se<sub>2</sub> nanocrystals that serve as a structural template for the final hexagonal wurtzite-like product. We compare the chemistry of wurtzite-like Cu<sub>2</sub>FeSnSe<sub>4</sub> to the related CuFeSe<sub>2</sub> material system. Our experimental and computational comparisons between Cu<sub>2</sub>FeSnSe<sub>4</sub> and CuFeSe<sub>2</sub> help explain both the crystal chemistry of CuFeSe<sub>2</sub> that prevents it from forming wurtzite-like polymorphs and the essential role of Sn in stabilizing the metastable structure of Cu<sub>2</sub>FeSnSe<sub>4</sub>. This work provides insight into the importance of elemental composition when designing syntheses for metastable materials.