Literature DB >> 25252975

Lithium-antimony-lead liquid metal battery for grid-level energy storage.

Kangli Wang1, Kai Jiang1, Brice Chung1, Takanari Ouchi1, Paul J Burke1, Dane A Boysen1, David J Bradwell1, Hojong Kim1, Ulrich Muecke1, Donald R Sadoway1.   

Abstract

The ability to store energy on the electric grid would greatly improve its efficiency and reliability while enabling the integration of intermittent renewable energy technologies (such as wind and solar) into baseload supply. Batteries have long been considered strong candidate solutions owing to their small spatial footprint, mechanical simplicity and flexibility in siting. However, the barrier to widespread adoption of batteries is their high cost. Here we describe a lithium-antimony-lead liquid metal battery that potentially meets the performance specifications for stationary energy storage applications. This Li||Sb-Pb battery comprises a liquid lithium negative electrode, a molten salt electrolyte, and a liquid antimony-lead alloy positive electrode, which self-segregate by density into three distinct layers owing to the immiscibility of the contiguous salt and metal phases. The all-liquid construction confers the advantages of higher current density, longer cycle life and simpler manufacturing of large-scale storage systems (because no membranes or separators are involved) relative to those of conventional batteries. At charge-discharge current densities of 275 milliamperes per square centimetre, the cells cycled at 450 degrees Celsius with 98 per cent Coulombic efficiency and 73 per cent round-trip energy efficiency. To provide evidence of their high power capability, the cells were discharged and charged at current densities as high as 1,000 milliamperes per square centimetre. Measured capacity loss after operation for 1,800 hours (more than 450 charge-discharge cycles at 100 per cent depth of discharge) projects retention of over 85 per cent of initial capacity after ten years of daily cycling. Our results demonstrate that alloying a high-melting-point, high-voltage metal (antimony) with a low-melting-point, low-cost metal (lead) advantageously decreases the operating temperature while maintaining a high cell voltage. Apart from the fact that this finding puts us on a desirable cost trajectory, this approach may well be more broadly applicable to other battery chemistries.

Entities:  

Year:  2014        PMID: 25252975     DOI: 10.1038/nature13700

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  5 in total

1.  Electrical energy storage for the grid: a battery of choices.

Authors:  Bruce Dunn; Haresh Kamath; Jean-Marie Tarascon
Journal:  Science       Date:  2011-11-18       Impact factor: 47.728

Review 2.  Battery technologies for large-scale stationary energy storage.

Authors:  Grigorii L Soloveichik
Journal:  Annu Rev Chem Biomol Eng       Date:  2011       Impact factor: 11.059

3.  Electrochemical energy storage for green grid.

Authors:  Zhenguo Yang; Jianlu Zhang; Michael C W Kintner-Meyer; Xiaochuan Lu; Daiwon Choi; John P Lemmon; Jun Liu
Journal:  Chem Rev       Date:  2011-03-04       Impact factor: 60.622

4.  Liquid metal batteries: past, present, and future.

Authors:  Hojong Kim; Dane A Boysen; Jocelyn M Newhouse; Brian L Spatocco; Brice Chung; Paul J Burke; David J Bradwell; Kai Jiang; Alina A Tomaszowska; Kangli Wang; Weifeng Wei; Luis A Ortiz; Salvador A Barriga; Sophie M Poizeau; Donald R Sadoway
Journal:  Chem Rev       Date:  2012-11-27       Impact factor: 60.622

5.  Magnesium-antimony liquid metal battery for stationary energy storage.

Authors:  David J Bradwell; Hojong Kim; Aislinn H C Sirk; Donald R Sadoway
Journal:  J Am Chem Soc       Date:  2012-01-18       Impact factor: 15.419

  5 in total
  9 in total

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Journal:  Nature       Date:  2022-08-24       Impact factor: 69.504

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3.  Reactivation of dead sulfide species in lithium polysulfide flow battery for grid scale energy storage.

Authors:  Yang Jin; Guangmin Zhou; Feifei Shi; Denys Zhuo; Jie Zhao; Kai Liu; Yayuan Liu; Chenxi Zu; Wei Chen; Rufan Zhang; Xuanyi Huang; Yi Cui
Journal:  Nat Commun       Date:  2017-09-06       Impact factor: 14.919

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Journal:  Nat Commun       Date:  2017-03-06       Impact factor: 14.919

5.  A 4D x-ray computer microtomography for high-temperature electrochemistry.

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Journal:  Sci Adv       Date:  2022-02-09       Impact factor: 14.136

Review 6.  Affordable clean energy transition in developing countries: Pathways and technologies.

Authors:  Oluleke O Babayomi; Davo A Dahoro; Zhenbin Zhang
Journal:  iScience       Date:  2022-03-28

7.  Environmentally-friendly aqueous Li (or Na)-ion battery with fast electrode kinetics and super-long life.

Authors:  Xiaoli Dong; Long Chen; Jingyuan Liu; Servane Haller; Yonggang Wang; Yongyao Xia
Journal:  Sci Adv       Date:  2016-01-22       Impact factor: 14.136

8.  Calcium-based multi-element chemistry for grid-scale electrochemical energy storage.

Authors:  Takanari Ouchi; Hojong Kim; Brian L Spatocco; Donald R Sadoway
Journal:  Nat Commun       Date:  2016-03-22       Impact factor: 14.919

9.  Classical 1/3 scaling of convection holds up to Ra = 1015.

Authors:  Kartik P Iyer; Janet D Scheel; Jörg Schumacher; Katepalli R Sreenivasan
Journal:  Proc Natl Acad Sci U S A       Date:  2020-03-25       Impact factor: 11.205

  9 in total

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