Literature DB >> 33785597

In situ small-angle X-ray scattering reveals solution phase discharge of Li-O2 batteries with weakly solvating electrolytes.

Christian Prehal1,2, Aleksej Samojlov3, Manfred Nachtnebel4, Ludek Lovicar5, Manfred Kriechbaum6, Heinz Amenitsch6, Stefan A Freunberger1,5.   

Abstract

Electrodepositing insulating lithium peroxide (Li2O2) is the key process during discharge of aprotic Li-O2 batteries and determines rate, capacity, and reversibility. Current understanding states that the partition between surface adsorbed and dissolved lithium superoxide governs whether Li2O2 grows as a conformal surface film or larger particles, leading to low or high capacities, respectively. However, better understanding governing factors for Li2O2 packing density and capacity requires structural sensitive in situ metrologies. Here, we establish in situ small- and wide-angle X-ray scattering (SAXS/WAXS) as a suitable method to record the Li2O2 phase evolution with atomic to submicrometer resolution during cycling a custom-built in situ Li-O2 cell. Combined with sophisticated data analysis, SAXS allows retrieving rich quantitative structural information from complex multiphase systems. Surprisingly, we find that features are absent that would point at a Li2O2 surface film formed via two consecutive electron transfers, even in poorly solvating electrolytes thought to be prototypical for surface growth. All scattering data can be modeled by stacks of thin Li2O2 platelets potentially forming large toroidal particles. Li2O2 solution growth is further justified by rotating ring-disk electrode measurements and electron microscopy. Higher discharge overpotentials lead to smaller Li2O2 particles, but there is no transition to an electronically passivating, conformal Li2O2 coating. Hence, mass transport of reactive species rather than electronic transport through a Li2O2 film limits the discharge capacity. Provided that species mobilities and carbon surface areas are high, this allows for high discharge capacities even in weakly solvating electrolytes. The currently accepted Li-O2 reaction mechanism ought to be reconsidered.

Entities:  

Keywords:  Li-air battery; disproportionation; oxygen reduction; small-angle X-ray scattering

Year:  2021        PMID: 33785597      PMCID: PMC8040814          DOI: 10.1073/pnas.2021893118

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  31 in total

1.  Mechanisms of Morphological Evolution of Li2O2 Particles during Electrochemical Growth.

Authors:  Robert R Mitchell; Betar M Gallant; Yang Shao-Horn; Carl V Thompson
Journal:  J Phys Chem Lett       Date:  2013-03-18       Impact factor: 6.475

2.  Communications: Elementary oxygen electrode reactions in the aprotic Li-air battery.

Authors:  J S Hummelshøj; J Blomqvist; S Datta; T Vegge; J Rossmeisl; K S Thygesen; A C Luntz; K W Jacobsen; J K Nørskov
Journal:  J Chem Phys       Date:  2010-02-21       Impact factor: 3.488

3.  Capacity-limiting mechanisms in Li/O2 batteries.

Authors:  Jing Liu; Saeed Khaleghi Rahimian; Charles W Monroe
Journal:  Phys Chem Chem Phys       Date:  2016-08-17       Impact factor: 3.676

4.  The role of LiO2 solubility in O2 reduction in aprotic solvents and its consequences for Li-O2 batteries.

Authors:  Lee Johnson; Chunmei Li; Zheng Liu; Yuhui Chen; Stefan A Freunberger; Praveen C Ashok; Bavishna B Praveen; Kishan Dholakia; Jean-Marie Tarascon; Peter G Bruce
Journal:  Nat Chem       Date:  2014-11-10       Impact factor: 24.427

5.  Solvating additives drive solution-mediated electrochemistry and enhance toroid growth in non-aqueous Li-O₂ batteries.

Authors:  Nagaphani B Aetukuri; Bryan D McCloskey; Jeannette M García; Leslie E Krupp; Venkatasubramanian Viswanathan; Alan C Luntz
Journal:  Nat Chem       Date:  2014-12-15       Impact factor: 24.427

6.  In situ transmission electron microscopy observations of electrochemical oxidation of Li2O2.

Authors:  Li Zhong; Robert R Mitchell; Yang Liu; Betar M Gallant; Carl V Thompson; Jian Yu Huang; Scott X Mao; Yang Shao-Horn
Journal:  Nano Lett       Date:  2013-04-25       Impact factor: 11.189

7.  Singlet Oxygen Formation during the Charging Process of an Aprotic Lithium-Oxygen Battery.

Authors:  Johannes Wandt; Peter Jakes; Josef Granwehr; Hubert A Gasteiger; Rüdiger-A Eichel
Journal:  Angew Chem Int Ed Engl       Date:  2016-05-04       Impact factor: 15.336

8.  Visualization and quantification of electrochemical and mechanical degradation in Li ion batteries.

Authors:  Martin Ebner; Federica Marone; Marco Stampanoni; Vanessa Wood
Journal:  Science       Date:  2013-10-17       Impact factor: 47.728

9.  Mechanism and performance of lithium-oxygen batteries - a perspective.

Authors:  Nika Mahne; Olivier Fontaine; Musthafa Ottakam Thotiyl; Martin Wilkening; Stefan A Freunberger
Journal:  Chem Sci       Date:  2017-07-31       Impact factor: 9.825

10.  On the incompatibility of lithium-O2 battery technology with CO2.

Authors:  Shiyu Zhang; Matthew J Nava; Gary K Chow; Nazario Lopez; Gang Wu; David R Britt; Daniel G Nocera; Christopher C Cummins
Journal:  Chem Sci       Date:  2017-06-20       Impact factor: 9.825

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  1 in total

1.  Exclusive Solution Discharge in Li-O2 Batteries?

Authors:  Christian Prehal; Soumyadip Mondal; Ludek Lovicar; Stefan A Freunberger
Journal:  ACS Energy Lett       Date:  2022-08-29       Impact factor: 23.991

  1 in total

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