Laser‐Induced Synthesis of Tin Sulfides

Author:

Averchenko Aleksandr V.1ORCID,Abbas Omar A.12ORCID,Salimon Igor A.1ORCID,Zharkova Ekaterina V.1ORCID,Grayfer Ekaterina D.1,Lipovskikh Svetlana3ORCID,McNaughter Paul4ORCID,Lewis David4ORCID,Hallam Toby5ORCID,Lagoudakis Pavlos G.1ORCID,Mailis Sakellaris1ORCID

Affiliation:

1. Center for Photonic Science and Engineering (CPhSE) Skolkovo Institute of Science and Technology 3 Nobel Street Moscow 143026 Russian Federation

2. Laser and Optoelectronics Department College of Engineering Al‐Nahrain University Baghdad 10072 Iraq

3. Center for Energy Science and Technology (CEST) Skolkovo Institute of Science and Technology 3 Nobel Street Moscow 143026 Russian Federation

4. Department of Materials University of Manchester Oxford Road Manchester M13 9PL UK

5. School of Mathematics Statistics and Physics Newcastle University Newcastle upon Tyne NE17RU UK

Abstract

AbstractVarious polytypes of van der Waals (vdW) materials can be formed by sulfur and tin, which exhibit distinctive and complementary electronic properties. Hence, these materials are attractive candidates for the design of multifunctional devices. This work demonstrates direct selective growth of tin sulfides by laser irradiation. A 532 nm continuous wave laser is used to synthesize centimeter‐scale tin sulfide tracks from single source precursor tin(II) o‐ethylxanthate under ambient conditions. Modulation of laser irradiation conditions enables tuning of the dominant phase of tin sulfide as well as SnS2/SnS heterostructures formation. An in‐depth investigation of the morphological, structural, and compositional characteristics of the laser‐synthesized tin sulfide microstructures is reported. Furthermore, laser‐synthesized tin sulfides photodetectors show broad spectral response with relatively high photoresponsivity up to 4 AW−1 and fast switching time (τ rise = 1.8 ms and τ fall = 16 ms). This approach is versatile and can be exploited in various fields such as energy conversion and storage, catalysis, chemical sensors, and optoelectronics.

Publisher

Wiley

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