arrow
Return

On-device phase engineering

delete2024-04-25
delete5
PRE
AI
X
Xiaowei Liu
J
Junjie Shan
T
Tianjun Cao
L
Liang Zhu
J
Jiayu Ma
王刚 cover
王刚 (Gang Wang)
Z
Zude Shi
Q
Qishuo Yang
M
Mingyu Ma
Z
Zenglin Liu
S
Shengnan Yan
L
Lizheng Wang
Y
Yudi Dai
J
Junlin Xiong
F
Fanqiang Chen
B
Buwei Wang
C
Chen Pan
王振林 (Zhenlin Wang)
B
Bin Cheng
Y
Yongmin He
罗昕 (Xin Luo) *
J
Junhao Lin *
S
Shi‐Jun Liang
F
Feng Miao *
DOI:10.1038/s41563-024-01888-ydelete
deleteOriginal
deleteOriginal request for help
deleteShare
deleteSave
Abstract

Abstract

En 中文
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 PdSe2 channel with prepatterned Pd electrodes can be transformed into Pd17Se15 and Pd4Se 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. A strategy of on-device phase engineering of two-dimensional materials is proposed, allowing the in situ realization of various lattice phases with distinct stoichiometries and versatile functions.
Keywords:
TRANSITION
SUPERCONDUCTIVITY
RESISTANCE
CONTACT

Journal

Nature Materials cover
Nature Materials
IF:
38.5
Papers:
6.8K
Citations:
11.5W

Organization

S
Sun Yat Sen University
Scholars:
9.9W
Papers: 7.2W
Citations: 95
N
nanjing university
Scholars:
7.7W
Papers: 5.6W
Citations: 87
H
hunan university
Scholars:
4.4W
Papers: 3.3W
Citations: 70
researcher View more organizations