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Substitutional doping of MoTe/ZrS heterostructures for sustainable energy related applications. | LitMetric

Substitutional doping of MoTe/ZrS heterostructures for sustainable energy related applications.

Phys Chem Chem Phys

MOE Key Laboratory of Microstructured Materials, School of Physics Science and Engineering, Tongji University, Shanghai, 200092, China.

Published: October 2023


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Article Abstract

Stacking and/or substitutional doping are effective strategies to tune two-dimensional materials with desired properties, greatly extending the applications of the pristine materials. Here, by employing first-principles calculations, we propose that a pristine MoTe/ZrS heterostructure is a distinguished lithium-ion battery anode material with a low Li diffusion barrier (∼0.26 eV), and it has a high maximum Li storage capacity (476.36 mA h g) and a relatively low open-circuit voltage (0.16 V) at Li/MoTe/Li/ZrS/Li. The other heterostructures with different types can be achieved by substitutional doping and their potential applications in sustainable energy related areas are further unraveled. For instance, a type-II TeMoSe/ZrS heterostructure could be a potential direct Z-scheme photocatalyst for water splitting with a high solar-to-hydrogen conversion efficiency of 17.62%. The TeMoSe/SZrO heterostructure is predicted to be a potential candidate for application in highly efficient solar cells. Its maximum power conversion efficiency can be as high as 19.21%, which is quite promising for commercial applications. The present results will shed light on the sustainable energy applications of pristine or doped MoTe/ZrS heterostructures in the future.

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http://dx.doi.org/10.1039/d3cp03563hDOI Listing

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