Ionic Transport and Electrochemical Properties of NaSICON-Type Li1+XHf2-XGaX(PO4)3 for All-Solid-State Lithium Batteries

被引:5
作者
Ladenstein, Lukas [1 ]
Hogrefe, Katharina [1 ]
Wilkening, H. Martin R. [1 ]
机构
[1] Graz Univ Technol NAWI Graz, Inst Chem & Technol Mat, A-8010 Graz, Austria
关键词
solid electrolytes; NaSICON; ion dynamics; NMR; conductivity; all-solid-state batteries; PHASE-TRANSITION; LI METAL; CONDUCTIVITY; LIHF2(PO4)(3); RELAXATION; INTERFACE; CRYSTALLINE; DIFFUSIVITY; ELECTROLYTE; PARAMETERS;
D O I
10.1021/acsaem.2c01304
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
ABSTRACT: NaSICON-type rhombohedral LiHf2(PO4)3 (LHP) is regarded as a quite promising solid electrolyte for future all-solid-state Li-ion batteries. Appropriate aliovalent substitution is, however, necessary to achieve high ionic conductivities. A clear-cut understanding of the substitution effects on microscopic Li+ ion dynamics is necessary to optimize its conduction properties. To advance in the field, we prepared a series of Ga-bearing Li1+xHf2-xGax(PO4)3 (Ga-LHP) samples (x = 0, 0.1, ... 0.4, 1.0) to comprehensively investigate the relationship between composition and Li+ ion dynamics. 7Li and 31P NMR helped us characterize the extent of structural disorder introduced through the replacement of Hf by Ga. In a complementary way, we compare our results from broadband conductivity spectroscopy with those obtained from time-domain NMR measurements being sensitive to long-range ion transport and to the elementary Li+ jump processes. This methodical approach allowed us to trace ion dynamics over a wide length scale. It turned out that the sample with a Ga content x of only 0.1 (89.3% relative density) showed the highest bulk conductivity of 0.45 mS cm-1 (0.24 eV). Importantly, activation energies as deduced from spin-lattice relaxation NMR point to activation energies ranging from 0.15 to 0.23 eV, revealing a rather flat potential landscape to which the ions are subjected in the different forms of Ga-LHP. To test its electrochemical applicability in allsolid-state batteries, we used cyclic voltammetry, Li plating-stripping experiments, and galvanostatic cycling measurements with current densities of up to 0.1 mA cm-2. An electrochemical stability window of 2.4 to 4.6 V, a critical current density of at least 25 mA cm-2, and a long cycle life of more than 1900 charge/discharge cycles (60 degrees C) make Li1.1Hf1.9Ga0.1(PO4)3, with a slight amount of Ga incorporated, indeed a highly promising alternative to current solid electrolytes.
引用
收藏
页码:8823 / 8834
页数:12
相关论文
共 61 条
[41]   Computational and Experimental Investigation of the Electrochemical Stability and Li-Ion Conduction Mechanism of LiZr2(PO4)3 [J].
Noda, Yusuke ;
Nakano, Koki ;
Takeda, Hayami ;
Kotobuki, Masashi ;
Lu, Li ;
Nakayama, Masanobu .
CHEMISTRY OF MATERIALS, 2017, 29 (21) :8983-8991
[42]   Composite NASICON (Na3Zr2Si2PO12) Solid-State Electrolyte with Enhanced Na+ Ionic Conductivity: Effect of Liquid Phase Sintering [J].
Oh, Jin An Sam ;
He, Linchun ;
Plewa, Anna ;
Morita, Masato ;
Zhao, Yue ;
Sakamoto, Tetsuo ;
Song, Xu ;
Zhai, Wei ;
Zeng, Kaiyang ;
Lu, Li .
ACS APPLIED MATERIALS & INTERFACES, 2019, 11 (43) :40125-40133
[43]   Materials design of ionic conductors for solid state batteries [J].
Ohno, Saneyuki ;
Banik, Ananya ;
Dewald, Georg F. ;
Kraft, Marvin A. ;
Krauskopf, Thorben ;
Minafra, Nicolo ;
Till, Paul ;
Weiss, Manuel ;
Zeier, Wolfgang G. .
PROGRESS IN ENERGY, 2020, 2 (02)
[44]   Phase transition and ionic mobility in LiHf2(PO4)(3) with NASICON structure [J].
Paris, MA ;
MartinezJuarez, A ;
Iglesias, JE ;
Rojo, JM ;
Sanz, J .
CHEMISTRY OF MATERIALS, 1997, 9 (06) :1430-1436
[45]   Interfaces in all solid state Li-metal batteries: A review on instabilities, stabilization strategies, and scalability [J].
Paul, Partha ;
Chen, Bor-Rong A. ;
Langevin, Spencer J. ;
Dufek, Eric S. ;
Weker, Johanna Nelson ;
Ko, Jesse S. .
ENERGY STORAGE MATERIALS, 2022, 45 :969-1001
[46]   The Electronic Conductivity of Single Crystalline Ga-Stabilized Cubic Li7La3Zr2O12: A Technologically Relevant Parameter for All-Solid-State Batteries [J].
Philipp, Martin ;
Gadermaier, Bernhard ;
Posch, Patrick ;
Hanzu, Ilie ;
Ganschow, Steffen ;
Meven, Martin ;
Rettenwander, Daniel ;
Redhammer, Guenther J. ;
Wilkening, H. Martin R. .
ADVANCED MATERIALS INTERFACES, 2020, 7 (16)
[47]   Review on the synthesis and doping strategies in enhancing the Na ion conductivity of Na3Zr2Si2PO12 (NASICON) based solid electrolytes [J].
Rao, Y. Bhaskara ;
Bharathi, K. Kamala ;
Patro, L. N. .
SOLID STATE IONICS, 2021, 366
[48]   Interface Stability in Solid-State Batteries [J].
Richards, William D. ;
Miara, Lincoln J. ;
Wang, Yan ;
Kim, Jae Chul ;
Ceder, Gerbrand .
CHEMISTRY OF MATERIALS, 2016, 28 (01) :266-273
[49]   Structural and transport properties of lithium-conducting NASICON materials [J].
Rossbach, Andreas ;
Tietz, Frank ;
Grieshammer, Steffen .
JOURNAL OF POWER SOURCES, 2018, 391 :1-9
[50]   Vanadium substituted Li+-NASICON systems: Tailoring electronic conductivity for electrode applications [J].
Sharma, Neelakshi ;
Dalvi, Anshuman .
JOURNAL OF ALLOYS AND COMPOUNDS, 2021, 861