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A Switchable One-Compound Diode

delete2022-11-24
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OA
AI
A
Anna Vogel
A
Alfred Rabenbauer
P
Philipp Deng
R
Ruben Steib
T
Thorben Böger
W
Wolfgang G. Zeier
R
Renée Siegel
J
Jürgen Senker
D
Dominik Daisenberger
K
Katharina Nisi
A
Alexander W. Holleitner
J
Janio Venturini
T
Tom Nilges *
DOI:10.1002/adma.202208698delete
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Abstract

Abstract

En 中文
A diode requires the combination of p- and n-type semiconductors or at least the defined formation of such areas within a given compound. This is a prerequisite for any IT application, energy conversion technology, and electronic semiconductor devices. Since the discovery of the pnp-switchable compound Ag10Te4Br3 in 2009, it is in principle possible to fabricate a diode from a single material without adjusting the semiconduction type by a defined doping level. Often a structural phase transition accompanied by a dynamic change of charge carriers or a charge density wave within certain substructures are responsible for this effect. Unfortunately, the high pnp-switching temperature between 364 and 580 K hinders the application of this phenomenon in convenient devices. This effect is far removed from a suitable operation temperature at ambient conditions. Ag18Cu3Te11Cl3 is a room temperature pnp-switching material and the first single-material position-independent diode. It shows the highest ever reported Seebeck coefficient drop that takes place within a few Kelvin. Combined with its low thermal conductivity, it offers great application potential within an accessible and applicable temperature window. Ag18Cu3Te11Cl3 and pnp-switching materials have the potential for applications and processes where diodes, transistors, or any defined charge separation with junction formation are utilized.
Keywords:
coinage metals
diodes
ion conductors
pnp-switches
polymorphism
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Advanced Materials cover
Advanced Materials
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