In situ TEM electrochemistry of anode materials in lithium ion batteries

被引:422
作者
Liu, Xiao Hua [1 ]
Huang, Jian Yu [1 ]
机构
[1] Sandia Natl Labs, Ctr Integrated Nanotechnol CINT, Albuquerque, NM 87185 USA
关键词
X-RAY-ABSORPTION; TRANSMISSION ELECTRON-MICROSCOPY; SOLID-STATE AMORPHIZATION; CRYSTALLINE SILICON; NEGATIVE-ELECTRODE; STRUCTURAL-CHANGES; THERMAL-STABILITY; CATHODE MATERIALS; SNO2; NANOWIRE; THIN-FILMS;
D O I
10.1039/c1ee01918j
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
We created the first nanobattery inside a transmission electron microscope (TEM), allowing for real time and atomic scale observations of battery charging and discharging processes. Two types of nanobattery cells, one based on room temperature ionic liquid electrolytes (ILEs) and the other based on all solid components, were created. The former consists of a single nanowire anode, an ILE and a bulk LiCoO2 cathode; the latter uses Li2O as a solid electrolyte and metal Li as the anode. Some of the important latest results obtained by using the nanobattery setup are summarized here: (1) upon charging SnO2 nanowires in an ILE cell with one end of the nanowire contacting the electrolyte, a reaction front propagates progressively along the nanowire, causing the nanowire to swell, elongate, and spiral. The reaction front is a "Medusa zone" containing a high density of mobile dislocations, which continuously nucleate at the moving front and absorbed from behind. This dislocation cloud indicates large in-plane misfit stresses and is a structural precursor to electrochemically driven solid-state amorphization. When the nanowire is immersed in the electrolyte (in a flooding geometry), a multiple-strip-multiple-reaction-front lithiation mechanism operates. (2) Upon charging < 112 >-oriented Si nanowires, the nanowires swell rather than elongate. We found unexpectedly the highly anisotropic volume expansion in lithiated Si nanowires, resulting in a surprising dumbbell-shaped cross-section, which developed due to plastic flow and necking instability. Driven by progressive charging, the stress concentration at the neck region led to cracking and eventually fracture of the single nanowire into sub-wires. Moreover, the fully lithiated phase was found to be crystalline Li15Si4, rather than the widely believed Li22Si5 phase, indicating the maximum capacity of Si being 3579 mA h g(-1) at room temperature. (3) Carbon coating not only increases rate performance but also alters the lithiation induced strain of SnO2 nanowires. The SnO2 nanowires coated with carbon can be charged about 10 times faster than the non-coated ones. Intriguingly, the radial expansion of the coated nanowires was completely suppressed, resulting in enormously reduced tensile stress at the reaction front, as evidenced by the lack of formation of dislocations. (4) The lithiation process of individual Si nanoparticles was bserved in real time in a TEM. A strong size dependent fracture behaviour was discovered, i.e., there exists a critical particle size with a diameter of similar to 150 nm, below which the particles neither cracked nor fractured upon lithiation, above which the particles first formed cracks and then fractured due to lithiation induced huge volume expansion. For very large particles with size over 900 nm, electrochemical lithiation induced explosion of Si particles was observed. This strong size-dependent fracture behaviour is attributed to the competition between the stored mechanical energy and the crack propagation energy of the nanoparticles: smaller nanoparticles cannot store enough mechanical energy to drive crack propagation. These results indicate the strong material, size and crystallographic orientation dependent electrochemical behaviour of anode materials, highlighting the powerfulness of in situ TEM electrochemistry, which provides not only deep understanding of the fundamental sciences of lithium ion batteries but also critical guidance in developing advance lithium ion battery for electrical vehicle and backup power for fluctuation energy sources such as wind and solar energy.
引用
收藏
页码:3844 / 3860
页数:17
相关论文
共 128 条
  • [1] LITHIUM ELECTRODE CYCLEABILITY AND MORPHOLOGY DEPENDENCE ON CURRENT-DENSITY
    ARAKAWA, M
    TOBISHIMA, S
    NEMOTO, Y
    ICHIMURA, M
    YAMAKI, J
    [J]. JOURNAL OF POWER SOURCES, 1993, 43 (1-3) : 27 - 35
  • [2] Nanostructured materials for advanced energy conversion and storage devices
    Aricò, AS
    Bruce, P
    Scrosati, B
    Tarascon, JM
    Van Schalkwijk, W
    [J]. NATURE MATERIALS, 2005, 4 (05) : 366 - 377
  • [3] Demonstrating oxygen loss and associated structural reorganization in the lithium battery cathode Li[Ni0.2Li0.2Mn0.6]O2
    Armstrong, A. Robert
    Holzapfel, Michael
    Novak, Petr
    Johnson, Christopher S.
    Kang, Sun-Ho
    Thackeray, Michael M.
    Bruce, Peter G.
    [J]. JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2006, 128 (26) : 8694 - 8698
  • [4] Design and performance of an electrochemical in-situ cell for high resolution full-pattern X-ray powder diffraction
    Baehtz, C
    Buhrmester, T
    Bramnik, NN
    Nikolowski, K
    Ehrenberg, H
    [J]. SOLID STATE IONICS, 2005, 176 (17-18) : 1647 - 1652
  • [5] High energy density all-solid-state batteries: A challenging concept towards 3D integration
    Baggetto, Loic
    Niessen, Rogier A. H.
    Roozeboom, Fred
    Notten, Peter H. L.
    [J]. ADVANCED FUNCTIONAL MATERIALS, 2008, 18 (07) : 1057 - 1066
  • [6] In situ X-ray absorption spectroscopy of germanium evaporated thin film electrodes
    Baggetto, Loic
    Hensen, Emiel J. M.
    Notten, Peter H. L.
    [J]. ELECTROCHIMICA ACTA, 2010, 55 (23) : 7074 - 7079
  • [7] Lithium-Ion (De)Insertion Reaction of Germanium Thin-Film Electrodes: An Electrochemical and In Situ XRD Study
    Baggetto, Loic
    Notten, Peter H. L.
    [J]. JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2009, 156 (03) : A169 - A175
  • [8] In situ X-ray diffraction and X-ray absorption studies of high-rate lithium-ion batteries
    Balasubramanian, M
    Sun, X
    Yang, XQ
    McBreen, J
    [J]. JOURNAL OF POWER SOURCES, 2001, 92 (1-2) : 1 - 8
  • [9] Nanoscale mapping of ion diffusion in a lithium-ion battery cathode
    Balke, N.
    Jesse, S.
    Morozovska, A. N.
    Eliseev, E.
    Chung, D. W.
    Kim, Y.
    Adamczyk, L.
    Garcia, R. E.
    Dudney, N.
    Kalinin, S. V.
    [J]. NATURE NANOTECHNOLOGY, 2010, 5 (10) : 749 - 754
  • [10] INSITU OBSERVATION BY SEM OF POSITIVE COMPOSITE ELECTRODES DURING DISCHARGE OF POLYMER LITHIUM BATTERIES
    BAUDRY, P
    ARMAND, M
    GAUTHIER, M
    MASOUNAVE, J
    [J]. SOLID STATE IONICS, 1988, 28 : 1567 - 1571