On-device phase engineering.

Nat Mater

National Laboratory of Solid State Microstructures, School of Physics, Collaborative Innovation Center of Advanced Microstructures, Nanjing University, Nanjing, China.

Published: October 2024

AI Article Synopsis

  • In situ phase engineering of two-dimensional materials allows for the manipulation of their properties using external stimuli, potentially enhancing their application in electronics and energy systems.
  • The proposed method enables the creation of different lattice phases with varying chemical compositions, demonstrated using palladium and selenide, which allows for unique functions such as superconductivity and low-contact resistance.
  • This versatile technique can be applied to a wide range of metal and chalcogen combinations, making it a promising approach for advancing material properties and their practical uses.

Article Abstract

In situ tailoring of two-dimensional materials' phases under external stimulus facilitates the manipulation of their properties for electronic, quantum and energy applications. However, current methods are mainly limited to the transitions among phases with unchanged chemical stoichiometry. Here we propose on-device phase engineering that allows us to realize various lattice phases with distinct chemical stoichiometries. Using palladium and selenide as a model system, we show that a PdSe channel with prepatterned Pd electrodes can be transformed into PdSe and PdSe by thermally tailoring the chemical composition ratio of the channel. Different phase configurations can be obtained by precisely controlling the thickness and spacing of the electrodes. The device can be thus engineered to implement versatile functions in situ, such as exhibiting superconducting behaviour and achieving ultralow-contact resistance, as well as customizing the synthesis of electrocatalysts. The proposed on-device phase engineering approach exhibits a universal mechanism and can be expanded to 29 element combinations between a metal and chalcogen. Our work highlights on-device phase engineering as a promising research approach through which to exploit fundamental properties as well as their applications.

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Source
http://dx.doi.org/10.1038/s41563-024-01888-yDOI Listing

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