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The interplay between (electro)chemical and (chemo)mechanical effects in the cycling performance of thiophosphate-based solid-state batteries

Jun Hao Teo Florian Strauss Felix Walther Yuan Ma Seyedhosein Payandeh Torsten Scherer Matteo Bianchini Jrgen Janek Torsten Brezesinski

Jun Hao Teo, Florian Strauss, Felix Walther, Yuan Ma, Seyedhosein Payandeh, Torsten Scherer, Matteo Bianchini, Jrgen Janek, Torsten Brezesinski. The interplay between (electro)chemical and (chemo)mechanical effects in the cycling performance of thiophosphate-based solid-state batteries[J]. Materials Futures, 2022, 1(1): 015102. doi: 10.1088/2752-5724/ac3897
Citation: Jun Hao Teo, Florian Strauss, Felix Walther, Yuan Ma, Seyedhosein Payandeh, Torsten Scherer, Matteo Bianchini, Jrgen Janek, Torsten Brezesinski. The interplay between (electro)chemical and (chemo)mechanical effects in the cycling performance of thiophosphate-based solid-state batteries[J]. Materials Futures, 2022, 1(1): 015102. doi: 10.1088/2752-5724/ac3897
Paper •
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The interplay between (electro)chemical and (chemo)mechanical effects in the cycling performance of thiophosphate-based solid-state batteries

doi: 10.1088/2752-5724/ac3897
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  • Figure  1.  Cycling performance of SSB cells with (a) glassy SE (1.5Li2S-0.5P2S5-LiI) and (b) crystalline SE (Li6PS5Cl) in both pelletized and slurry-cast cathodes and corresponding Coulombic efficiencies. Cells tested at 45 C, C/5, 2.9-4.4 V vs Li+/Li.

    Figure  2.  Cross-sectional SEM images of the slurry-cast cathode of SSB cells using (a), (b) glassy SE (1.5Li2S-0.5P2S5-LiI) and (c), (d) crystalline SE (Li6PS5Cl) after 200 cycles at a rate of C/5 and 45 C. The arrows denote void formation and cracking.

    Figure  3.  Nyquist plots of the electrochemical impedance of SSB cells (black lines: measured data; solid symbols: fitted data) using a slurry-cast cathode with (a) glassy SE (1.5Li2S-0.5P2S5-LiI) and (b) crystalline SE (Li6PS5Cl) after 200 cycles at a rate of C/5 and 45 C. Semicircles provide eye guidance for the individual resistance contributions.

    Figure  4.  In situ pressure monitoring of Super C65 electrodes with (a)-(c) glassy SE (1.5Li2S-0.5P2S5-LiI) and (e)-(g) crystalline SE (Li6PS5Cl). (a), (e) CV profiles, (b), (f) current response, and (c), (g) pressure response. Cells tested at 45 C, 0.05 mV s-1, OCV-4.4 V vs Li+/Li in the first cycle and 1.55-4.4 V vs Li+/Li in the following cycles. Top-view SEM images of the (d) glassy SE/Super C65 and (h) crystalline SE/Super C65 electrodes after cycling.

    Figure  5.  Electrochemical profile of SSB cells using a slurry-cast cathode with (a) glassy SE (1.5Li2S-0.5P2S5-LiI) and (b) crystalline SE (Li6PS5Cl) and corresponding time-resolved evolution rates (left y-axis) and cumulative amounts (right y-axis) for H2, O2, and CO2, as well as normalized ion currents for SO2. Cells tested at 45 C, C/20, 2.9-5.0 V vs Li+/Li.

    Figure  6.  X-ray photoelectron spectra of the (a) S 2p and (b) P 2p core levels of slurry-cast cathodes with glassy SE (1.5Li2S-0.5P2S5-LiI) and crystalline SE (Li6PS5Cl) collected before and after 200 cycles at a rate of C/5 and 45 C. Box plots of the normalized intensity of (c) PO2-, (d) PO3-, (e) SO2-, and (f) SO3- fragments for the uncycled and cycled g-SE and c-SE cells from ToF-SIMS depth-profiling analysis.

    Figure  7.  Cycling performance of SSB cells using a slurry-cast cathode with NCM622 (see also figure 1(a)) or NCM851005 and with glassy SE (1.5Li2S-0.5P2S5-LiI). Cells tested at 45 C, C/5, 2.9-4.4 V vs Li+/Li.

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  • 收稿日期:  2021-10-07
  • 录用日期:  2021-11-10
  • 修回日期:  2021-11-10
  • 刊出日期:  2022-01-12

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