Beyond electrostatic modification: design and discovery of functional oxide phases via ionic-electronic doping

A new research field of functional materials and device physics is rising that combines ionic transport with charge carrier modulation to realize emergent physical properties and discovery of metastable phases. The paradigm for enabling function extends far beyond carrier accumulation or depletion i...

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Main Authors: Hai-Tian Zhang, Zhen Zhang, Hua Zhou, Hidekazu Tanaka, Dillon D. Fong, Shriram Ramanathan
Format: Article
Language:English
Published: Taylor & Francis Group 2019-01-01
Series:Advances in Physics: X
Subjects:
Online Access:http://dx.doi.org/10.1080/23746149.2018.1523686
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spelling doaj-7845c0ea5fcf4dfc91e1a344922cef592020-11-25T01:25:07ZengTaylor & Francis GroupAdvances in Physics: X2374-61492019-01-014110.1080/23746149.2018.15236861523686Beyond electrostatic modification: design and discovery of functional oxide phases via ionic-electronic dopingHai-Tian Zhang0Zhen Zhang1Hua Zhou2Hidekazu Tanaka3Dillon D. Fong4Shriram Ramanathan5Purdue UniversityPurdue UniversityArgonne National LaboratoryOsaka UniversityArgonne National LaboratoryPurdue UniversityA new research field of functional materials and device physics is rising that combines ionic transport with charge carrier modulation to realize emergent physical properties and discovery of metastable phases. The paradigm for enabling function extends far beyond carrier accumulation or depletion in band semiconductors or simply moving ions through an insulating electrolyte. Rather, by carefully selecting electronically or structurally fragile materials, one can collapse or open band gaps via extreme ionic dopant concentration, or reconfigure their entire crystal structure to create new phases. Electron–electron and electron–lattice interactions can be coupled or controlled independently in such systems via electric fields without thermal constraints by use of ionic dopants. The unifying theme across these studies is to introduce ions and electrons via electric fields through interfaces, with electrochemistry playing a dominant role. In this review, we briefly summarize this nascent field of iontronics and discuss principal results to date with examples from binary and complex oxides as well as selected 2D materials systems. We conclude the review by highlighting gaps in fundamental scientific understanding and prospects for the use of such novel devices in future electronic, photonic and energy technologies.http://dx.doi.org/10.1080/23746149.2018.1523686functional oxidesionic-electronic dopingtwo dimensional materialsiontronics
collection DOAJ
language English
format Article
sources DOAJ
author Hai-Tian Zhang
Zhen Zhang
Hua Zhou
Hidekazu Tanaka
Dillon D. Fong
Shriram Ramanathan
spellingShingle Hai-Tian Zhang
Zhen Zhang
Hua Zhou
Hidekazu Tanaka
Dillon D. Fong
Shriram Ramanathan
Beyond electrostatic modification: design and discovery of functional oxide phases via ionic-electronic doping
Advances in Physics: X
functional oxides
ionic-electronic doping
two dimensional materials
iontronics
author_facet Hai-Tian Zhang
Zhen Zhang
Hua Zhou
Hidekazu Tanaka
Dillon D. Fong
Shriram Ramanathan
author_sort Hai-Tian Zhang
title Beyond electrostatic modification: design and discovery of functional oxide phases via ionic-electronic doping
title_short Beyond electrostatic modification: design and discovery of functional oxide phases via ionic-electronic doping
title_full Beyond electrostatic modification: design and discovery of functional oxide phases via ionic-electronic doping
title_fullStr Beyond electrostatic modification: design and discovery of functional oxide phases via ionic-electronic doping
title_full_unstemmed Beyond electrostatic modification: design and discovery of functional oxide phases via ionic-electronic doping
title_sort beyond electrostatic modification: design and discovery of functional oxide phases via ionic-electronic doping
publisher Taylor & Francis Group
series Advances in Physics: X
issn 2374-6149
publishDate 2019-01-01
description A new research field of functional materials and device physics is rising that combines ionic transport with charge carrier modulation to realize emergent physical properties and discovery of metastable phases. The paradigm for enabling function extends far beyond carrier accumulation or depletion in band semiconductors or simply moving ions through an insulating electrolyte. Rather, by carefully selecting electronically or structurally fragile materials, one can collapse or open band gaps via extreme ionic dopant concentration, or reconfigure their entire crystal structure to create new phases. Electron–electron and electron–lattice interactions can be coupled or controlled independently in such systems via electric fields without thermal constraints by use of ionic dopants. The unifying theme across these studies is to introduce ions and electrons via electric fields through interfaces, with electrochemistry playing a dominant role. In this review, we briefly summarize this nascent field of iontronics and discuss principal results to date with examples from binary and complex oxides as well as selected 2D materials systems. We conclude the review by highlighting gaps in fundamental scientific understanding and prospects for the use of such novel devices in future electronic, photonic and energy technologies.
topic functional oxides
ionic-electronic doping
two dimensional materials
iontronics
url http://dx.doi.org/10.1080/23746149.2018.1523686
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