Bridging the Fields of Solar Cell and Battery Research to Develop High-Performance Anodes for Photoelectrochemical Cells and Metal Ion Batteries

Solar-to-electricity energy conversion and large scale electricity storage technologies are key to achieve a sustainable development of society. For energy conversion, photoelectrochemical solar cells were proposed as an economic alternative to the conventional Si-based technology. For energy storag...

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Main Authors: Giacomo Giorgi, Sergei Manzhos
Format: Article
Language:English
Published: MDPI AG 2013-06-01
Series:Challenges
Subjects:
Online Access:http://www.mdpi.com/2078-1547/4/1/116
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spelling doaj-d14382d224db4ca8a9b69098b6620bae2020-11-24T23:56:30ZengMDPI AGChallenges2078-15472013-06-014111613510.3390/challe4010116Bridging the Fields of Solar Cell and Battery Research to Develop High-Performance Anodes for Photoelectrochemical Cells and Metal Ion BatteriesGiacomo GiorgiSergei ManzhosSolar-to-electricity energy conversion and large scale electricity storage technologies are key to achieve a sustainable development of society. For energy conversion, photoelectrochemical solar cells were proposed as an economic alternative to the conventional Si-based technology. For energy storage, metal-ion batteries are a very promising technology. Titania (TiO2) based anodes are widely used in photoelectrochemical cells and have recently emerged as safe, high-rate anodes for metal-ion batteries. In both applications, titania interacts with electrolyte species: molecules and metal ions. Details of this interaction determine the performance of the electrode in both technologies, but no unified theoretical description exists, e.g., there is no systematic description of the effects of Li, Na insertion into TiO2 on solar cell performance (while it is widely studied in battery research) and no description of effects of surface adsorbents on the performance of battery anodes (while they are widely studied in solar cell research). In fact, there is no systematic description of interactions of electrolyte species with TiO2 of different phases and morphologies. We propose a computation-focused study that will bridge the two fields that have heretofore largely been developing in parallel and will identify improved anode materials for both photoelectrochemical solar cells and metal-ion batteries.http://www.mdpi.com/2078-1547/4/1/116sustainable developmentsolar energyelectricity storagephotoelectrochemical cellselectrochemical batteriestitaniaNa ion batteriesinsertionco-adsorbents
collection DOAJ
language English
format Article
sources DOAJ
author Giacomo Giorgi
Sergei Manzhos
spellingShingle Giacomo Giorgi
Sergei Manzhos
Bridging the Fields of Solar Cell and Battery Research to Develop High-Performance Anodes for Photoelectrochemical Cells and Metal Ion Batteries
Challenges
sustainable development
solar energy
electricity storage
photoelectrochemical cells
electrochemical batteries
titania
Na ion batteries
insertion
co-adsorbents
author_facet Giacomo Giorgi
Sergei Manzhos
author_sort Giacomo Giorgi
title Bridging the Fields of Solar Cell and Battery Research to Develop High-Performance Anodes for Photoelectrochemical Cells and Metal Ion Batteries
title_short Bridging the Fields of Solar Cell and Battery Research to Develop High-Performance Anodes for Photoelectrochemical Cells and Metal Ion Batteries
title_full Bridging the Fields of Solar Cell and Battery Research to Develop High-Performance Anodes for Photoelectrochemical Cells and Metal Ion Batteries
title_fullStr Bridging the Fields of Solar Cell and Battery Research to Develop High-Performance Anodes for Photoelectrochemical Cells and Metal Ion Batteries
title_full_unstemmed Bridging the Fields of Solar Cell and Battery Research to Develop High-Performance Anodes for Photoelectrochemical Cells and Metal Ion Batteries
title_sort bridging the fields of solar cell and battery research to develop high-performance anodes for photoelectrochemical cells and metal ion batteries
publisher MDPI AG
series Challenges
issn 2078-1547
publishDate 2013-06-01
description Solar-to-electricity energy conversion and large scale electricity storage technologies are key to achieve a sustainable development of society. For energy conversion, photoelectrochemical solar cells were proposed as an economic alternative to the conventional Si-based technology. For energy storage, metal-ion batteries are a very promising technology. Titania (TiO2) based anodes are widely used in photoelectrochemical cells and have recently emerged as safe, high-rate anodes for metal-ion batteries. In both applications, titania interacts with electrolyte species: molecules and metal ions. Details of this interaction determine the performance of the electrode in both technologies, but no unified theoretical description exists, e.g., there is no systematic description of the effects of Li, Na insertion into TiO2 on solar cell performance (while it is widely studied in battery research) and no description of effects of surface adsorbents on the performance of battery anodes (while they are widely studied in solar cell research). In fact, there is no systematic description of interactions of electrolyte species with TiO2 of different phases and morphologies. We propose a computation-focused study that will bridge the two fields that have heretofore largely been developing in parallel and will identify improved anode materials for both photoelectrochemical solar cells and metal-ion batteries.
topic sustainable development
solar energy
electricity storage
photoelectrochemical cells
electrochemical batteries
titania
Na ion batteries
insertion
co-adsorbents
url http://www.mdpi.com/2078-1547/4/1/116
work_keys_str_mv AT giacomogiorgi bridgingthefieldsofsolarcellandbatteryresearchtodevelophighperformanceanodesforphotoelectrochemicalcellsandmetalionbatteries
AT sergeimanzhos bridgingthefieldsofsolarcellandbatteryresearchtodevelophighperformanceanodesforphotoelectrochemicalcellsandmetalionbatteries
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