1 |
李文俊, 徐航宇, 杨琪, 等. 高能量密度锂电池开发策略[J]. 储能科学与技术, 2020, 9(2): 448-478.
|
|
LI W J, XU H Y, YANG Q, et al. Development of strategies for high-energy-density lithium batteries[J]. Energy Storage Science and Technology, 2020, 9(2): 448-478.
|
2 |
高蕾, 孟玉凤, 颜琪斌, 等. 铜箔对动力锂离子电池性能的影响[J]. 储能科学与技术, 2020, 9(S1): 1-6.
|
|
GAO L, MENG Y F, YAN Q B, et al. The influence of copper foil appearance quality on Li-ion power battery performance[J]. Energy Storage Science and Technology, 2020, 9(S1): 1-6.
|
3 |
ZHU P C, GASTOL D, MARSHALL J, et al. A review of current collectors for lithium-ion batteries[J]. Journal of Power Sources, 2021, 485: 229321.
|
4 |
JEONG H, JANG J, JO C. A review on current collector coating methods for next-generation batteries[J]. Chemical Engineering Journal, 2022, 446: 136860.
|
5 |
YE Y S, CHOU L Y, LIU Y Y, et al. Ultralight and fire-extinguishing current collectors for high-energy and high-safety lithium-ion batteries[J]. Nature Energy, 2020, 5: 786-793.
|
6 |
CHOUDHURY R, WILD J, YANG Y. Engineering current collectors for batteries with high specific energy[J]. Joule, 2021, 5(6): 1301-1305.
|
7 |
YAZICI M S, KRASSOWSKI D, PRAKASH J. Flexible graphite as battery anode and current collector[J]. Journal of Power Sources, 2005, 141(1): 171-176.
|
8 |
WANG L, HE X M, LI J J, et al. Graphene-coated plastic film as current collector for lithium/sulfur batteries[J]. Journal of Power Sources, 2013, 239: 623-627.
|
9 |
KIM S W, CHO K Y. Current collectors for flexible lithium ion batteries: A review of materials[J]. Journal of Electrochemical Science and Technology, 2015, 6(1): 1-6.
|
10 |
YUN J H, HAN G B, LEE Y M, et al. Low resistance flexible current collector for lithium secondary battery[J]. Electrochemical and Solid-State Letters, 2011, 14(8): A116-A119.
|
11 |
XU S, ZHANG Y H, CHO J, et al. Stretchable batteries with self-similar serpentine interconnects and integrated wireless recharging systems[J]. Nature Communications, 2013, 4: 1543.
|
12 |
JUNG M S, SEO J H, MOON M W, et al. A bendable Li-ion battery with a nano-hairy electrode: Direct integration scheme on the polymer substrate[J]. Advanced Energy Materials, 2015, 5(1): 1400611.
|
13 |
CHEN L L, SONG W L, LI N, et al. Nonmetal current collectors: The key component for high-energy-density aluminum batteries[J]. Advanced Materials, 2020, 32(42): 2001212.
|
14 |
LIU Z K, DONG Y H, QI X Q, et al. Stretchable separator/current collector composite for superior battery safety[J]. Energy & Environmental Science, 2022, 15(12): 5313-5323.
|
15 |
王成豪, 李学法, 张国平. 低溶胀的复合集流体及其制备方法: CN114864953A[P]. 2022-08-05.
|
|
WANG C H, LI X F, ZHANG G P. Low-swelling composite current collector and preparation method thereof: CN114864953A[P]. 2022-08-05.
|
16 |
BARBIC P A, BINDER L, VOSS S, et al. Thin-film zinc/manganese dioxide electrodes based on microporous polymer foils[J]. Journal of Power Sources, 1999, 79(2): 271-276.
|
17 |
YIM H, YU S H, BAEK S H, et al. Directly integrated all-solid-state flexible lithium batteries on polymer substrate[J]. Journal of Power Sources, 2020, 455: 227978.
|
18 |
WANG S T, KRAVCHYK K V, FILIPPIN A N, et al. Aluminum chloride-graphite batteries with flexible current collectors prepared from earth-abundant elements[J]. Advanced Science, 2018, 5(4): 1700712.
|
19 |
YE Y S, HUANG W X, XU R, et al. Cold-starting all-solid-state batteries from room temperature by thermally modulated current collector in sub-minute[J]. Advanced Materials, 2022, 34(36): e2202848.
|
20 |
HU J Q, LI Y Z, LIAO S Y, et al. Ultralight and high thermal conductive current collector derived from polyimide for advanced LIBs[J]. ACS Applied Energy Materials, 2021, 4(9): 9721-9730.
|
21 |
COHEN E, MENKIN S, LIFSHITS M, et al. Novel rechargeable 3D-Microbatteries on 3D-printed-polymer substrates: Feasibility study[J]. Electrochimica Acta, 2018, 265: 690-701.
|
22 |
SARAKINOS K, ALAMI J, KONSTANTINIDIS S. High power pulsed magnetron sputtering: A review on scientific and engineering state of the art[J]. Surface and Coatings Technology, 2010, 204(11): 1661-1684.
|
23 |
李柯, 许星海, 周宁, 等. C/LLZO复合隔膜的磁控溅射制备及其对多硫化物抑制效应[J]. 真空科学与技术学报, 2018, 38(8): 713-718.
|
|
LI K, XU X H, ZHOU N, et al. Inhibition of polysulfide diffusion by modifying polypropylene separator with sputtered C/LLZO coatings[J]. Chinese Journal of Vacuum Science and Technology, 2018, 38(8): 713-718.
|
24 |
ZHONG Z W, WANG J H. Uniformity and characterisation of PVD aluminium films[J]. Surface Engineering, 2005, 21(2): 119-124.
|
25 |
PAKHURUDDIN M Z, IBRAHIM K, AZIZ A A. Properties of aluminium thin films on polyethylene terephthalate substrates as back contacts in thin film silicon solar cells[J]. International Journal of Polymeric Materials, 2012, 61(9): 669-678.
|
26 |
ZAPOROJTCHENKO V, STRUNSKUS T, BEHNKE K, et al. Formation of metal-polymer interfaces by metal evaporation: Influence of deposition parameters and defects[J]. Microelectronic Engineering, 2000, 50(1/2/3/4): 465-471.
|
27 |
ZHOU M S, ZHANG W L, DING D Y, et al. The effect of pretreatment on adhesive strength of Cu-plated liquid crystal polymer (LCP)[J]. Applied Surface Science, 2012, 258(7): 2643-2647.
|
28 |
EE Y C, CHEN Z, CHAN L, et al. Effect of processing parameters on electroless Cu seed layer properties[J]. Thin Solid Films, 2004, 462/463: 197-201.
|
29 |
MUENCH F. Electroless plating of metal nanomaterials[J]. ChemElectroChem, 2021, 8(16): 2993-3012.
|
30 |
MAMLEYEV E R, FALK F, WEIDLER P G, et al. Polyaramid-based flexible antibacterial coatings fabricated using laser-induced carbonization and copper electroplating[J]. ACS Applied Materials & Interfaces, 2020, 12(47): 53193-53205.
|
31 |
WANG Y, NI L J, YANG F, et al. Facile preparation of a high-quality copper layer on epoxy resin via electroless plating for applications in electromagnetic interference shielding[J]. Journal of Materials Chemistry C, 2017, 5(48): 12769-12776.
|
32 |
FARAJ M, IBRAHIM K. Investigation of the structural properties of thermally evaporated aluminium thin films on different polymer substrates[J]. International Journal of Thin Films Science and Technology, 2015, 4: 27-30.
|
33 |
HAMASHA M M, ALZOUBI K, SWITZER J C, et al. A study on crack propagation and electrical resistance change of sputtered aluminum thin film on poly ethylene terephthalate substrate under stretching[J]. Thin Solid Films, 2011, 519(22): 7918-7924.
|