Foaming suppression during the solid-state synthesis of the Li1.3Al0.3Ti1.7(PO4)3 solid electrolyte

被引:1
作者
Shindrov, Alexander A. [1 ]
Skachilova, Maria G. [2 ]
Gerasimov, Konstantin B. [1 ]
Kosova, Nina, V [1 ]
机构
[1] Russian Acad Sci, Inst Solid State Chem & Mechanochem, Siberian Branch, 18 Kutateladze, Novosibirsk 630090, Russia
[2] Novosibirsk State Univ, Dept Nat Sci, 2 Pirogova, Novosibirsk 630090, Russia
基金
俄罗斯科学基金会;
关键词
Li1.3Al0.3Ti1.7(PO4)(3); Foaming suppression; Super P; Fast synthesis; Phase composition; Conductive properties; CO2 GAS SENSOR; IONIC-CONDUCTIVITY; GLASS-CERAMICS; TITANIUM-PHOSPHATE; CATALYTIC-ACTIVITY; LITHIUM; DESALINATION; PERFORMANCE; TI;
D O I
10.1016/j.solidstatesciences.2024.107617
中图分类号
O61 [无机化学];
学科分类号
070301 ; 081704 ;
摘要
In this work, the effect of carbon on the suppression of foaming during the solid-state synthesis of the Li1.3Al0.3Ti1.7(PO4)(3) (LATP) solid electrolyte was studied. According to thermal analysis data, mechanically activated mixtures with and without carbon exhibit similar behavior. The presence of carbon does not affect the gas release process during decomposition, and foaming suppression occurs due to the change in viscosity of the melt created by NH4H2PO4. Slow LATP-S, medium LATP-M and fast LATP-F synthesis routes were used to evaluate the optimal conditions for LATP preparation. It was found that the use of carbon to suppress foaming eliminated the need for preheating and milling and reduced the synthesis time to 2.5 h (LATP-F). The effect of the synthesis route on the phase composition, morphology, conductive and electrochemical properties of LATP-S, LATP-M and LATP-F was investigated. No significant differences in studied properties were found for the synthesizer LATP samples excluding particle size distribution. Comparison of the granulometric curves showed that the fast synthesis method resulted in a decrease in particle size. The values of the ionic conductivity sigma(ion) for LATP-S, LATP-M and LATP-F are equal to similar to 10(-4) S cm(-1), while the electronic conductivity se does not exeed center dot 10(-9) S cm(-1). The study of the electrochemical stability window of the synthesized LATP samples was showed that these solid electrolytes are stable up to 4.65-4.70 V.
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页数:8
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  • [1] IONIC-CONDUCTIVITY OF THE LITHIUM TITANIUM PHOSPHATE (LI1+XALXTI2-X(PO4)3), (LI1+XSCXTI2-X(PO4)3), (LI1+XYXTI2-X(PO4)3), (LI1+XLAXTI2-X(PO4)3 SYSTEMS
    AONO, H
    SUGIMOTO, E
    SADAOKA, Y
    IMANAKA, N
    ADACHI, GY
    [J]. JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1989, 136 (02) : 590 - 591
  • [2] ELECTRICAL-PROPERTIES AND SINTERABILITY FOR LITHIUM GERMANIUM PHOSPHATE LI1+XMXGE2-X(PO4)3, M=AL, CR, GA, FE, SC, AND IN SYSTEMS
    AONO, H
    SUGIMOTO, E
    SADAOKA, Y
    IMANAKA, N
    ADACHI, GY
    [J]. BULLETIN OF THE CHEMICAL SOCIETY OF JAPAN, 1992, 65 (08) : 2200 - 2204
  • [3] NASICON type ordered mesoporous lithium-aluminum-titanium-phosphate as electrode materials for lithium-ion batteries
    Bhanja, Piyali
    Senthil, Chenrayan
    Patra, Astam Kumar
    Sasidharan, Manickam
    Bhaumik, Asim
    [J]. MICROPOROUS AND MESOPOROUS MATERIALS, 2017, 240 : 57 - 64
  • [4] Separating bulk from grain boundary Li ion conductivity in the sol-gel prepared solid electrolyte Li1.5Al0.5Ti1.5(PO4)3
    Breuer, Stefan
    Prutsch, Denise
    Ma, Qianli
    Epp, Viktor
    Preishuber-Pfluegl, Florian
    Tietz, Frank
    Wilkening, Martin
    [J]. JOURNAL OF MATERIALS CHEMISTRY A, 2015, 3 (42) : 21343 - 21350
  • [5] Sulfide solid electrolytes for all-solid-state lithium batteries: Structure, conductivity, stability and application
    Chen, Shaojie
    Xie, Dongjiu
    Liu, Gaozhan
    Mwizerwa, Jean Pierre
    Zhang, Qiang
    Zhao, Yanran
    Xu, Xiaoxiong
    Yao, Xiayin
    [J]. ENERGY STORAGE MATERIALS, 2018, 14 : 58 - 74
  • [6] Comparative study of lithium ion conductors in the system Li1-xAlxA2-xIV (PO4)3 with AIV = Ti or Ge and 0≤x≤0.7 for use as Li+ sensitive membranes
    Cretin, M
    Fabry, P
    [J]. JOURNAL OF THE EUROPEAN CERAMIC SOCIETY, 1999, 19 (16) : 2931 - 2940
  • [7] Methods for Lithium Ion NASICON Preparation: From Solid-State Synthesis to Highly Conductive Glass-Ceramics
    Dias, Jeferson A.
    Santagneli, Silvia H.
    Messaddeq, Younes
    [J]. JOURNAL OF PHYSICAL CHEMISTRY C, 2020, 124 (49) : 26518 - 26539
  • [8] Lithium conducting solid electrolyte Li1.3Al0.3Ti1.7(PO4)3 obtained via solution chemistry
    Duluard, Sandrine
    Paillassa, Aude
    Puech, Laurent
    Vinatier, Philippe
    Turq, Viviane
    Rozier, Patrick
    Lenormand, Pascal
    Taberna, Pierre-Louis
    Simon, Patrice
    Ansart, Florence
    [J]. JOURNAL OF THE EUROPEAN CERAMIC SOCIETY, 2013, 33 (06) : 1145 - 1153
  • [9] Elemental Analysis of Organic Compounds with the Use of Automated CHNS Analyzers
    Fadeeva, V. P.
    Tikhova, V. D.
    Nikulicheva, O. N.
    [J]. JOURNAL OF ANALYTICAL CHEMISTRY, 2008, 63 (11) : 1094 - 1106
  • [10] Fundamentals of inorganic solid-state electrolytes for batteries
    Famprikis, Theodosios
    Canepa, Pieremanuele
    Dawson, James A.
    Islam, M. Saiful
    Masquelier, Christian
    [J]. NATURE MATERIALS, 2019, 18 (12) : 1278 - 1291