Perovskite lead-based oxide anodes for rechargeable batteries

Lead-based perovskites (PbTiO3 and PbZrO3) are introduced as novel anode materials for non-aqueous M-ion rechargeable batteries (M = Li, Na, K). These compounds were scalably prepared by conventional solid-state (dry) and combustion (wet) routes. Charge storage in these perovskites involves a standa...

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Main Authors: Anshuman Chaupatnaik, Prabeer Barpanda
Format: Article
Language:English
Published: Elsevier 2021-06-01
Series:Electrochemistry Communications
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S1388248121001223
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spelling doaj-2159b702eef04b129f6dda82959887fd2021-04-30T07:07:04ZengElsevierElectrochemistry Communications1388-24812021-06-01127107038Perovskite lead-based oxide anodes for rechargeable batteriesAnshuman Chaupatnaik0Prabeer Barpanda1Faraday Materials Laboratory (FaMaL), Materials Research Centre, Indian Institute of Science, Bangalore 560012, IndiaFaraday Materials Laboratory (FaMaL), Materials Research Centre, Indian Institute of Science, Bangalore 560012, IndiaLead-based perovskites (PbTiO3 and PbZrO3) are introduced as novel anode materials for non-aqueous M-ion rechargeable batteries (M = Li, Na, K). These compounds were scalably prepared by conventional solid-state (dry) and combustion (wet) routes. Charge storage in these perovskites involves a standard conversion (PbII → Pb0) followed by reversible Li-Pb/Na-Pb/K-Pb (de)alloying reaction. The oxide matrix (M2O, TiO2 etc.) phase is crucial for reversibility of Pb alloying reaction, as pristine PbO fails fast. The conversion-alloying reaction mechanism has been verified by ex situ electron microscopy (TEM) study. PbTiO3 delivered 410 mAh/g capacity in the first charge vs. Li/Li+ and Na/Na+, while around 180 mAh/g capacity was observed vs. K/K+. Particularly, PbTiO3 forms a robust anode for sodium-ion batteries with maximum charge extracted under low voltage (below 0.8 V vs. Na/Na+, 275 mAh/g). Similar electrochemical activity was also noticed for other perovskites like PbZrO3 that confirms Pb-based (simple and mixed) perovskites can form a potential class of battery anode materials.http://www.sciencedirect.com/science/article/pii/S1388248121001223BatteryAnode materialsPerovskitePbTiO3
collection DOAJ
language English
format Article
sources DOAJ
author Anshuman Chaupatnaik
Prabeer Barpanda
spellingShingle Anshuman Chaupatnaik
Prabeer Barpanda
Perovskite lead-based oxide anodes for rechargeable batteries
Electrochemistry Communications
Battery
Anode materials
Perovskite
PbTiO3
author_facet Anshuman Chaupatnaik
Prabeer Barpanda
author_sort Anshuman Chaupatnaik
title Perovskite lead-based oxide anodes for rechargeable batteries
title_short Perovskite lead-based oxide anodes for rechargeable batteries
title_full Perovskite lead-based oxide anodes for rechargeable batteries
title_fullStr Perovskite lead-based oxide anodes for rechargeable batteries
title_full_unstemmed Perovskite lead-based oxide anodes for rechargeable batteries
title_sort perovskite lead-based oxide anodes for rechargeable batteries
publisher Elsevier
series Electrochemistry Communications
issn 1388-2481
publishDate 2021-06-01
description Lead-based perovskites (PbTiO3 and PbZrO3) are introduced as novel anode materials for non-aqueous M-ion rechargeable batteries (M = Li, Na, K). These compounds were scalably prepared by conventional solid-state (dry) and combustion (wet) routes. Charge storage in these perovskites involves a standard conversion (PbII → Pb0) followed by reversible Li-Pb/Na-Pb/K-Pb (de)alloying reaction. The oxide matrix (M2O, TiO2 etc.) phase is crucial for reversibility of Pb alloying reaction, as pristine PbO fails fast. The conversion-alloying reaction mechanism has been verified by ex situ electron microscopy (TEM) study. PbTiO3 delivered 410 mAh/g capacity in the first charge vs. Li/Li+ and Na/Na+, while around 180 mAh/g capacity was observed vs. K/K+. Particularly, PbTiO3 forms a robust anode for sodium-ion batteries with maximum charge extracted under low voltage (below 0.8 V vs. Na/Na+, 275 mAh/g). Similar electrochemical activity was also noticed for other perovskites like PbZrO3 that confirms Pb-based (simple and mixed) perovskites can form a potential class of battery anode materials.
topic Battery
Anode materials
Perovskite
PbTiO3
url http://www.sciencedirect.com/science/article/pii/S1388248121001223
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