In Situ Transmission Electron Microscopy for Energy Materials and Devices
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X. Duan | Yu Huang | Xidong Duan | Jianyu Huang | Yumeng Shi | L. Mei | Liqiang Zhang | Zheng Fan | Yuxing Yao | D. Baumann
[1] Yongfu Tang,et al. In-situ imaging electrocatalysis in a Na-O2 battery with Au-coated MnO2 nanowires air cathode , 2019, Energy Storage Materials.
[2] K. Zaghib,et al. In Situ Scanning Electron Microscopy Detection of Carbide Nature of Dendrites in Li-Polymer Batteries. , 2018, Nano letters.
[3] S. Choudhury,et al. Cryo-STEM mapping of solid–liquid interfaces and dendrites in lithium-metal batteries , 2018, Nature.
[4] A. Selloni,et al. Self-hydrogenated shell promoting photocatalytic H2 evolution on anatase TiO2 , 2018, Nature Communications.
[5] Veit Elser,et al. Electron ptychography of 2D materials to deep sub-ångström resolution , 2018, Nature.
[6] Ji‐Guang Zhang,et al. Coupling of electrochemically triggered thermal and mechanical effects to aggravate failure in a layered cathode , 2018, Nature Communications.
[7] Yongfu Tang,et al. In Situ Imaging the Oxygen Reduction Reactions of Solid State Na-O2 Batteries with CuO Nanowires as the Air Cathode. , 2018, Nano letters.
[8] X. Duan,et al. Approaching the Schottky–Mott limit in van der Waals metal–semiconductor junctions , 2018, Nature.
[9] J. Maier,et al. Electrochemically driven conversion reaction in fluoride electrodes for energy storage devices , 2018, npj Computational Materials.
[10] R. Sougrat,et al. Atomic-resolution transmission electron microscopy of electron beam–sensitive crystalline materials , 2018, Science.
[11] Won‐Jin Kwak,et al. Revealing the Reaction Mechanism of Na–O2 Batteries using Environmental Transmission Electron Microscopy , 2018 .
[12] W. Goddard,et al. Layer-by-Layer Degradation of Methylammonium Lead Tri-iodide Perovskite Microplates , 2017 .
[13] Terence B. Hook,et al. Power and Technology Scaling into the 5 nm Node with Stacked Nanosheets , 2017 .
[14] Ji‐Guang Zhang,et al. New Insights on the Structure of Electrochemically Deposited Lithium Metal and Its Solid Electrolyte Interphases via Cryogenic TEM. , 2017, Nano letters.
[15] Yi Yu,et al. Atomic structure of sensitive battery materials and interfaces revealed by cryo–electron microscopy , 2017, Science.
[16] Li Yang,et al. Recent progress in conversion reaction metal oxide anodes for Li-ion batteries , 2017 .
[17] P. Burr,et al. Importance of elastic finite-size effects: Neutral defects in ionic compounds , 2017, 1709.02037.
[18] Jun Lu,et al. Understanding materials challenges for rechargeable ion batteries with in situ transmission electron microscopy , 2017, Nature Communications.
[19] Y. Chiang,et al. Mechanism of Lithium Metal Penetration through Inorganic Solid Electrolytes , 2017 .
[20] Ji‐Guang Zhang,et al. Revealing the reaction mechanisms of Li-O2 batteries using environmental transmission electron microscopy. , 2017, Nature nanotechnology.
[21] Venkatasubramanian Viswanathan,et al. Review—Practical Challenges Hindering the Development of Solid State Li Ion Batteries , 2017 .
[22] T. Zhao,et al. Recent advances in inorganic 2D materials and their applications in lithium and sodium batteries , 2017 .
[23] N. Park,et al. Effect of Selective Contacts on the Thermal Stability of Perovskite Solar Cells. , 2017, ACS applied materials & interfaces.
[24] Yan Yu,et al. New Nanoconfined Galvanic Replacement Synthesis of Hollow Sb@C Yolk-Shell Spheres Constituting a Stable Anode for High-Rate Li/Na-Ion Batteries. , 2017, Nano letters.
[25] Hyunchul Kim,et al. Lithium-free transition metal monoxides for positive electrodes in lithium-ion batteries , 2017, Nature Energy.
[26] Lucienne Buannic,et al. Investigating the Dendritic Growth during Full Cell Cycling of Garnet Electrolyte in Direct Contact with Li Metal. , 2017, ACS applied materials & interfaces.
[27] Colin F. Dickens,et al. Combining theory and experiment in electrocatalysis: Insights into materials design , 2017, Science.
[28] David Rooney,et al. 3D nitrogen-doped graphene foam with encapsulated germanium/nitrogen-doped graphene yolk-shell nanoarchitecture for high-performance flexible Li-ion battery , 2017, Nature Communications.
[29] G. Duscher,et al. Observation of Nanoscale Morphological and Structural Degradation in Perovskite Solar Cells by in Situ TEM. , 2016, ACS applied materials & interfaces.
[30] Asma Sharafi,et al. Interfacial Stability of Li Metal-Solid Electrolyte Elucidated via in Situ Electron Microscopy. , 2016, Nano letters.
[31] Kyeongse Song,et al. Carbon‐Coated Si Nanoparticles Anchored between Reduced Graphene Oxides as an Extremely Reversible Anode Material for High Energy‐Density Li‐Ion Battery , 2016 .
[32] R. Klie,et al. Precise In Situ Modulation of Local Liquid Chemistry via Electron Irradiation in Nanoreactors Based on Graphene Liquid Cells , 2016, Advances in Materials.
[33] K. Mayrhofer,et al. Importance and Challenges of Electrochemical in Situ Liquid Cell Electron Microscopy for Energy Conversion Research. , 2016, Accounts of chemical research.
[34] U. Stimming,et al. In situ scanning tunneling microscopy studies of the SEI formation on graphite electrodes for Li(+)-ion batteries. , 2016, Nanoscale.
[35] K. Jungjohann,et al. Phase Boundary Propagation in Li-Alloying Battery Electrodes Revealed by Liquid-Cell Transmission Electron Microscopy. , 2016, ACS nano.
[36] Yizhou Zhu,et al. Visualizing non-equilibrium lithiation of spinel oxide via in situ transmission electron microscopy , 2016, Nature Communications.
[37] N. Dudney,et al. In Situ STEM-EELS Observation of Nanoscale Interfacial Phenomena in All-Solid-State Batteries. , 2016, Nano letters.
[38] Hisao Kato,et al. In-Situ Liquid TEM Study on the Degradation Mechanism of Fuel Cell Catalysts , 2016 .
[39] Doron Aurbach,et al. Promise and reality of post-lithium-ion batteries with high energy densities , 2016 .
[40] Litao Sun,et al. New Insights into Electrochemical Lithiation/Delithiation Mechanism of α-MoO3 Nanobelt by in Situ Transmission Electron Microscopy. , 2016, ACS applied materials & interfaces.
[41] Yi Xie,et al. Transition Metal Nitrides for Electrocatalytic Energy Conversion: Opportunities and Challenges. , 2016, Chemistry.
[42] Lin Gan,et al. Thermal Facet Healing of Concave Octahedral Pt–Ni Nanoparticles Imaged in Situ at the Atomic Scale: Implications for the Rational Synthesis of Durable High-Performance ORR Electrocatalysts , 2016 .
[43] Hyun-Wook Lee,et al. Erratum: Growth of conformal graphene cages on micrometre-sized silicon particles as stable battery anodes , 2016, Nature Energy.
[44] Asma Sharafi,et al. Characterizing the Li–Li7La3Zr2O12 interface stability and kinetics as a function of temperature and current density , 2016 .
[45] A. Di Carlo,et al. In situ observation of heat-induced degradation of perovskite solar cells , 2016, Nature Energy.
[46] F. Ross. Opportunities and challenges in liquid cell electron microscopy , 2015, Science.
[47] Guangyuan Zheng,et al. A phosphorene-graphene hybrid material as a high-capacity anode for sodium-ion batteries. , 2015, Nature nanotechnology.
[48] S. Ong,et al. Design principles for solid-state lithium superionic conductors. , 2015, Nature materials.
[49] N. Imanishi,et al. Transparent cubic garnet-type solid electrolyte of Al2O3-doped Li7La3Zr2O12 , 2015 .
[50] Jaephil Cho,et al. Considering Critical Factors of Li-rich Cathode and Si Anode Materials for Practical Li-ion Cell Applications. , 2015, Small.
[51] Jun Lu,et al. Asynchronous Crystal Cell Expansion during Lithiation of K(+)-Stabilized α-MnO2. , 2015, Nano letters.
[52] Karim Zaghib,et al. New lithium metal polymer solid state battery for an ultrahigh energy: nano C-LiFePO₄ versus nano Li1.2V₃O₈. , 2015, Nano letters.
[53] Nina Balke,et al. Nanoscale imaging of fundamental li battery chemistry: solid-electrolyte interphase formation and preferential growth of lithium metal nanoclusters. , 2015, Nano letters.
[54] M. Biener,et al. Structural optimization of 3D porous electrodes for high-rate performance lithium ion batteries. , 2015, ACS nano.
[55] Haoshen Zhou,et al. Phase transitions in a LiMn2O4 nanowire battery observed by operando electron microscopy. , 2015, ACS nano.
[56] Lin Gu,et al. New insight into the atomic-scale bulk and surface structure evolution of Li4Ti5O12 anode. , 2015, Journal of the American Chemical Society.
[57] Yi Cui,et al. In situ observation of divergent phase transformations in individual sulfide nanocrystals. , 2015, Nano letters.
[58] Junming Xu,et al. Atomic resolution study of reversible conversion reaction in metal oxide electrodes for lithium-ion battery. , 2014, ACS nano.
[59] Feng Li,et al. Visualizing the roles of graphene for excellent lithium storage , 2014 .
[60] Jaephil Cho,et al. Nanostructured transition metal sulfides for lithium ion batteries: Progress and challenges , 2014 .
[61] Doron Aurbach,et al. New Horizons for Conventional Lithium Ion Battery Technology. , 2014, The journal of physical chemistry letters.
[62] Leyla Soleymani,et al. In Situ Liquid Cell TEM Study of Morphological Evolution and Degradation of Pt–Fe Nanocatalysts During Potential Cycling , 2014 .
[63] Shichao Zhang,et al. Understanding Li-storage mechanism and performance of MnFe2O4 by in situ TEM observation on its electrochemical process in nano lithium battery , 2014 .
[64] Lin-Wang Wang,et al. Facet development during platinum nanocube growth , 2014, Science.
[65] Q. Yan,et al. Nanostructured metal sulfides for energy storage. , 2014, Nanoscale.
[66] Yong‐Sheng Hu,et al. New insight in understanding oxygen reduction and evolution in solid-state lithium-oxygen batteries using an in situ environmental scanning electron microscope. , 2014, Nano letters.
[67] Karena W. Chapman,et al. Capturing metastable structures during high-rate cycling of LiFePO4 nanoparticle electrodes , 2014, Science.
[68] J. Owen,et al. Phase-transforming electrodes , 2014, Science.
[69] Xiaofeng Qian,et al. In situ observation of random solid solution zone in LiFePO₄ electrode. , 2014, Nano letters.
[70] Kai He,et al. Expanded graphite as superior anode for sodium-ion batteries , 2014, Nature Communications.
[71] Amartya Mukhopadhyay,et al. Deformation and stress in electrode materials for Li-ion batteries , 2014 .
[72] Kevin G. Gallagher,et al. Quantifying the promise of lithium–air batteries for electric vehicles , 2014 .
[73] H. Xin,et al. Visualization of electrode-electrolyte interfaces in LiPF6/EC/DEC electrolyte for lithium ion batteries via in situ TEM. , 2014, Nano letters.
[74] Haimei Zheng,et al. Visualization of the Coalescence of Bismuth Nanoparticles , 2014, Microscopy and Microanalysis.
[75] Wenzhi Li,et al. In situ transmission electron microscopy observation of electrochemical sodiation of individual Co₉S₈-filled carbon nanotubes. , 2014, ACS nano.
[76] Gilbert M. Brown,et al. Quantitative Electrochemical Measurements Using In Situ ec-S/TEM Devices , 2014, Microscopy and Microanalysis.
[77] Hyun-Wook Lee,et al. A pomegranate-inspired nanoscale design for large-volume-change lithium battery anodes. , 2014, Nature nanotechnology.
[78] Meng Gu,et al. Direct Evidence of Lithium-Induced Atomic Ordering in Amorphous TiO2 Nanotubes , 2014 .
[79] Ilke Arslan,et al. Direct visualization of initial SEI morphology and growth kinetics during lithium deposition by in situ electrochemical transmission electron microscopy. , 2014, Chemical communications.
[80] Jian Xie,et al. In situ transmission electron microscopy observation of electrochemical behavior of CoS(2) in lithium-ion battery. , 2014, ACS applied materials & interfaces.
[81] C. Shi,et al. Graphene networks anchored with sn@graphene as lithium ion battery anode. , 2014, ACS nano.
[82] Kathleen A. Schwarz,et al. Nanoscale imaging of lithium ion distribution during in situ operation of battery electrode and electrolyte. , 2013, Nano letters.
[83] Haimei Zheng,et al. Observation of growth of metal nanoparticles. , 2013, Chemical communications.
[84] Jun Zhang,et al. In situ transmission electron microscopy investigation of the electrochemical lithiation-delithiation of individual Co9S8/Co-filled carbon nanotubes. , 2013, ACS nano.
[85] James E. Evans,et al. Demonstration of an electrochemical liquid cell for operando transmission electron microscopy observation of the lithiation/delithiation behavior of Si nanowire battery anodes. , 2013, Nano letters.
[86] Jian Yu Huang,et al. In Situ Atomic‐Scale Imaging of Phase Boundary Migration in FePO4 Microparticles During Electrochemical Lithiation , 2013, Advanced materials.
[87] Tetsuya Tsuda,et al. In situ SEM study of a lithium deposition and dissolution mechanism in a bulk-type solid-state cell with a Li2S-P2S5 solid electrolyte. , 2013, Physical chemistry chemical physics : PCCP.
[88] Jun Zhang,et al. In situ transmission electron microscopy observation of the conversion mechanism of Fe2O3/graphene anode during lithiation-delithiation processes. , 2013, ACS nano.
[89] Jaephil Cho,et al. Critical Thickness of SiO2 Coating Layer on Core@Shell Bulk@Nanowire Si Anode Materials for Li‐Ion Batteries , 2013, Advanced materials.
[90] Jie Xiao,et al. Electron-rich driven electrochemical solid-state amorphization in Li-Si alloys. , 2013, Nano letters.
[91] Farzad Mashayek,et al. Atomic-scale observation of lithiation reaction front in nanoscale SnO2 materials. , 2013, ACS nano.
[92] Jun Zhang,et al. Visualizing the electrochemical reaction of ZnO nanoparticles with lithium by in situ TEM: two reaction modes are revealed , 2013, Nanotechnology.
[93] Yang Shao-Horn,et al. In situ transmission electron microscopy observations of electrochemical oxidation of Li2O2. , 2013, Nano letters.
[94] Y. Orikasa,et al. Direct observation of a metastable crystal phase of Li(x)FePO4 under electrochemical phase transition. , 2013, Journal of the American Chemical Society.
[95] Haimei Zheng,et al. Liquid cell transmission electron microscopy study of platinum iron nanocrystal growth and shape evolution. , 2013, Journal of the American Chemical Society.
[96] Jun Zhang,et al. In Situ TEM Observation of the Electrochemical Process of Individual CeO2/Graphene Anode for Lithium Ion Battery , 2013 .
[97] Yi Cui,et al. In situ TEM of two-phase lithiation of amorphous silicon nanospheres. , 2013, Nano letters.
[98] Yi Cui,et al. Studying the Kinetics of Crystalline Silicon Nanoparticle Lithiation with In Situ Transmission Electron Microscopy , 2012, Advanced materials.
[99] S. T. Picraux,et al. In situ atomic-scale imaging of electrochemical lithiation in silicon. , 2012, Nature nanotechnology.
[100] Jian Yu Huang,et al. Self-limiting lithiation in silicon nanowires. , 2012, ACS nano.
[101] Meng Gu,et al. In situ TEM study of lithiation behavior of silicon nanoparticles attached to and embedded in a carbon matrix. , 2012, ACS nano.
[102] E. Longo,et al. Structural and Electronic Properties of Lithiated SnO2. A Periodic DFT Study , 2012 .
[103] Ting Zhu,et al. In Situ TEM Experiments of Electrochemical Lithiation and Delithiation of Individual Nanostructures , 2012 .
[104] Lin Gu,et al. Lithium Storage in Li4Ti5O12 Spinel: The Full Static Picture from Electron Microscopy , 2012, Advanced materials.
[105] Jillian F Banfield,et al. Direction-Specific Interactions Control Crystal Growth by Oriented Attachment , 2012, Science.
[106] S. Whitelam,et al. Real-Time Imaging of Pt3Fe Nanorod Growth in Solution , 2012, Science.
[107] Hui Wu,et al. A yolk-shell design for stabilized and scalable li-ion battery alloy anodes. , 2012, Nano letters.
[108] Yi Cui,et al. Stable cycling of double-walled silicon nanotube battery anodes through solid-electrolyte interphase control. , 2012, Nature nanotechnology.
[109] Yi Cui,et al. The effect of metallic coatings and crystallinity on the volume expansion of silicon during electrochemical lithiation/delithiation , 2012 .
[110] Daniel J. Hellebusch,et al. High-Resolution EM of Colloidal Nanocrystal Growth Using Graphene Liquid Cells , 2012, Science.
[111] Fei Gao,et al. In situ TEM investigation of congruent phase transition and structural evolution of nanostructured silicon/carbon anode for lithium ion batteries. , 2012, Nano letters.
[112] G. Amatucci,et al. Tracking lithium transport and electrochemical reactions in nanoparticles , 2012, Nature Communications.
[113] D. Su,et al. Nonprecious-metal catalysts for low-cost fuel cells. , 2011, Angewandte Chemie.
[114] Guang Zhu,et al. Leapfrog cracking and nanoamorphization of ZnO nanowires during in situ electrochemical lithiation. , 2011, Nano letters.
[115] Yi Cui,et al. Single Nanostructure Electrochemical Devices for Studying Electronic Properties and Structural Changes in Lithiated Si Nanowires , 2011 .
[116] Jian Yu Huang,et al. In situ TEM electrochemistry of anode materials in lithium ion batteries , 2011 .
[117] Jason Graetz,et al. Conversion reaction mechanisms in lithium ion batteries: study of the binary metal fluoride electrodes. , 2011, Journal of the American Chemical Society.
[118] Jian Yu Huang,et al. Size-dependent fracture of silicon nanoparticles during lithiation. , 2011, ACS nano.
[119] Yi Cui,et al. Size-dependent fracture of Si nanowire battery anodes , 2011 .
[120] Zhongwei Chen,et al. A review on non-precious metal electrocatalysts for PEM fuel cells , 2011 .
[121] S. T. Picraux,et al. Reversible nanopore formation in Ge nanowires during lithiation-delithiation cycling: an in situ transmission electron microscopy study. , 2011, Nano letters.
[122] Xiaofeng Qian,et al. Lithiation-induced embrittlement of multiwalled carbon nanotubes. , 2011, ACS nano.
[123] Zhan Lin,et al. Recent developments in nanostructured anode materials for rechargeable lithium-ion batteries , 2011 .
[124] Cheol‐Min Park,et al. The electrochemical characteristics of Ag2S and its nanocomposite anodes for Li-ion batteries , 2011 .
[125] Brandon R. Long,et al. Strain Anisotropies and Self‐Limiting Capacities in Single‐Crystalline 3D Silicon Microstructures: Models for High Energy Density Lithium‐Ion Battery Anodes , 2011 .
[126] Yang Liu,et al. Anisotropic swelling and fracture of silicon nanowires during lithiation. , 2011, Nano letters.
[127] Yi Cui,et al. Anomalous shape changes of silicon nanopillars by electrochemical lithiation. , 2011, Nano letters.
[128] John P. Sullivan,et al. Ultrafast electrochemical lithiation of individual Si nanowire anodes. , 2011, Nano letters.
[129] Ting Zhu,et al. Controlling the lithiation-induced strain and charging rate in nanowire electrodes by coating. , 2011, ACS nano.
[130] John P. Sullivan,et al. In Situ Observation of the Electrochemical Lithiation of a Single SnO2 Nanowire Electrode , 2010, Science.
[131] Sergei V. Kalinin,et al. Nanoscale mapping of ion diffusion in a lithium-ion battery cathode. , 2010, Nature nanotechnology.
[132] Jun Liu,et al. In situ transmission electron microscopy and spectroscopy studies of interfaces in Li ion batteries: Challenges and opportunities , 2010 .
[133] Kazuo Yamamoto,et al. Dynamic visualization of the electric potential in an all-solid-state rechargeable lithium battery. , 2010, Angewandte Chemie.
[134] Lei Zhang,et al. Nanostructured Pt-alloy electrocatalysts for PEM fuel cell oxygen reduction reaction. , 2010, Chemical Society reviews.
[135] Yang-Kook Sun,et al. High capacity and excellent stability of lithium ion battery anode using interface-controlled binder-free multiwall carbon nanotubes grown on copper. , 2010, ACS nano.
[136] A. Zewail. Four-Dimensional Electron Microscopy , 2010, Science.
[137] G. Yushin,et al. High-performance lithium-ion anodes using a hierarchical bottom-up approach. , 2010, Nature materials.
[138] Nae-Lih Wu,et al. A study on the interior microstructures of working Sn particle electrode of Li-ion batteries by in situ X-ray transmission microscopy , 2010 .
[139] Jun Chen,et al. Flexible free-standing carbon nanotube films for model lithium-ion batteries , 2009 .
[140] Jiangfeng Qian,et al. Electrochemical performances of Al-based composites as anode materials for Li-ion batteries , 2009 .
[141] A. Alivisatos,et al. Observation of Single Colloidal Platinum Nanocrystal Growth Trajectories , 2009, Science.
[142] Phl Peter Notten,et al. Lithium-Ion (De)Insertion Reaction of Germanium Thin-Film Electrodes: An Electrochemical and In Situ XRD Study , 2009 .
[143] D. Peckys,et al. Electron microscopy of whole cells in liquid with nanometer resolution , 2009, Proceedings of the National Academy of Sciences.
[144] T. Bredow,et al. Density Functional Theory Study for the Stability and Ionic Conductivity of Li2O Surfaces , 2009 .
[145] Y. Gogotsi,et al. Materials for electrochemical capacitors. , 2008, Nature materials.
[146] Yuval Golan,et al. The role of interparticle and external forces in nanoparticle assembly. , 2008, Nature materials.
[147] Fred Roozeboom,et al. High Energy Density All‐Solid‐State Batteries: A Challenging Concept Towards 3D Integration , 2008 .
[148] P. Bruce,et al. Nanomaterials for rechargeable lithium batteries. , 2008, Angewandte Chemie.
[149] J. Tarascon,et al. First cross-section observation of an all solid-state lithium-ion "nanobattery" by transmission electron microscopy , 2008 .
[150] M. Armand,et al. Building better batteries , 2008, Nature.
[151] J. Tarascon,et al. Si Electrodes for Li-Ion batteries- A new way to look at an old problem , 2008 .
[152] Jeff Wolfenstine,et al. Kinetic Study of the Electrochemical FePO 4 to LiFePO 4 Phase Transition , 2007 .
[153] Mark N. Obrovac,et al. Reversible Cycling of Crystalline Silicon Powder , 2007 .
[154] Linda F. Nazar,et al. On the Stability of LiFePO4 Olivine Cathodes under Various Conditions (Electrolyte Solutions, Temperatures) , 2007 .
[155] Charles Delacourt,et al. Study of the LiFePO4/FePO4 Two-Phase System by High-Resolution Electron Energy Loss Spectroscopy , 2006 .
[156] Zhiyong Tang,et al. Self-Assembly of CdTe Nanocrystals into Free-Floating Sheets , 2006, Science.
[157] M. Dresselhaus,et al. In situ Raman study on single- and double-walled carbon nanotubes as a function of lithium insertion. , 2006, Small.
[158] Peter R. Slater,et al. Atomic-Scale Investigation of Defects, Dopants, and Lithium Transport in the LiFePO4 Olivine-Type Battery Material , 2005 .
[159] Mijung Noh,et al. Critical Size of a Nano SnO2 Electrode for Li-Secondary Battery , 2005 .
[160] P. Bruce,et al. Nanostructured materials for advanced energy conversion and storage devices , 2005, Nature materials.
[161] Charles W. Monroe,et al. The Impact of Elastic Deformation on Deposition Kinetics at Lithium/Polymer Interfaces , 2005 .
[162] G. Ceder,et al. Role of electronic structure in the susceptibility of metastable transition-metal oxide structures to transformation. , 2004, Chemical reviews.
[163] Mark N. Obrovac,et al. Structural changes in silicon anodes during lithium insertion/extraction , 2004 .
[164] Dane Morgan,et al. Li Conductivity in Li x MPO 4 ( M = Mn , Fe , Co , Ni ) Olivine Materials , 2004 .
[165] F. Ross,et al. Dynamic microscopy of nanoscale cluster growth at the solid–liquid interface , 2003, Nature materials.
[166] Guoxiu Wang,et al. Al-based anode materials for Li-ion batteries , 2003 .
[167] D. D. MacNeil,et al. A comparison of the electrode/electrolyte reaction at elevated temperatures for various Li-ion battery cathodes , 2002 .
[168] M. Armand,et al. Issues and challenges facing rechargeable lithium batteries , 2001, Nature.
[169] C. Delmas,et al. Structural Characterization of Li1−z−xNi1+zO2 by Neutron Diffraction , 2001 .
[170] J. Tarascon,et al. Nano-sized transition-metal oxides as negative-electrode materials for lithium-ion batteries , 2000, Nature.
[171] Otto Zhou,et al. Enhanced saturation lithium composition in ball-milled single-walled carbon nanotubes , 2000 .
[172] D. Aurbach,et al. Sonochemical Synthesis of SnO2 Nanoparticles and Their Preliminary Study as Li Insertion Electrodes , 2000 .
[173] Young-Il Jang,et al. TEM Study of Electrochemical Cycling‐Induced Damage and Disorder in LiCoO2 Cathodes for Rechargeable Lithium Batteries , 1999 .
[174] K. S. Nanjundaswamy,et al. Phospho‐olivines as Positive‐Electrode Materials for Rechargeable Lithium Batteries , 1997 .
[175] A. Yamada,et al. Jahn-Teller structural phase transition around 280K in LiMn2O4 , 1995 .
[176] Ze Zhang,et al. Recent advances in gas-involved in situ studies via transmission electron microscopy , 2017, Nano Research.
[177] H. Yamada,et al. Contact between Garnet-Type Solid Electrolyte and Lithium Metal Anode: Influence on Charge Transfer Resistance and Short Circuit Prevention , 2017 .
[178] Yi Cui,et al. The path towards sustainable energy. , 2016, Nature materials.
[179] Xuanxuan Bi,et al. Dynamic study of (De)sodiation in alpha-MnO 2 nanowires , 2016 .
[180] C. B. Carter,et al. TEM in situ lithiation of tin nanoneedles for battery applications , 2015, Journal of Materials Science.
[181] J. Xie,et al. Few‐Layered SnS2 on Few‐Layered Reduced Graphene Oxide as Na‐Ion Battery Anode with Ultralong Cycle Life and Superior Rate Capability , 2015 .
[182] Y. Meng,et al. In situ Analytical Electron Microscopy for Probing NanoScale Electrochemistry , 2011 .
[183] K. Mølhave,et al. Multimodal Electrothermal Silicon Microgrippers for Nanotube Manipulation , 2009, IEEE Transactions on Nanotechnology.
[184] Lisa C. Klein,et al. Cobalt dissolution in LiCoO2-based non-aqueous rechargeable batteries , 1996 .