Lithium transport through non-fractal and fractal $Li_{1-5}CoO_2$ film electrodes using quasi-steady-state and transient electrochemical methods based upon fractal geometry프랙탈기하학을 바탕으로 준정상상태/시간추이 전기화학방법을 이용한 비프랙탈/프랙탈 형상의 리튬 코발트 산화물 박막 전극내에서의 리튬 이동에 관한 연구

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The present work is concerned with lithium transport through non-fractal and fractal $Li_{1-δ}CoO_2$ film electrodes using quasi-steady-state and transient electrochemical methods based upon fractal geometry. In chapter III, stresses generated during lithium transport through the rf sputter-deposited $Li_{1-δ}CoO_2$ films with different thicknesses were investigated by a double quartz crystal resonator (DQCR) technique. In situ resonant frequency changes of the $Li_{1-δ}CoO_2$ -coated AT- and BT-cut quartz crystals were first recorded along with the galvanostatic charge (lithium deintercalation) and discharge (lithium intercalation) curves obtained in a 1 M $LiClO_4-PC$ solution. From the measured resonant frequency changes, the lateral stresses of the $Li_{1-δ}CoO_2$ films were then estimated as a function of lithium stoichiometry (1-δ). Compressive and tensile stresses were developed in the $Li_{1-δ}CoO_2$ films during the lithium deintercalation and intercalation, respectively. The remarkable variation of compressive and tensile stresses with lithium stoichiometry appeared in a two-phase (a Li-poor alpha-phase and a Li-rich β-phase) region. Compressive and tensile stresses decreased in absolute magnitude with increasing film thickness. The contribution of the electrostrictive stress to the total stress was theoretically calculated to be about $2.2×10^{-3}$ %. From the extremely small contribution of the electrostrictive stress, it is strongly suggested that stresses result mainly from the volume contraction and expansion of the $Li_{1-δ}CoO_2$ films due to the lithium intercalation and deintercalation, respectively. Furthermore, it is experimentally confirmed that the relaxation of compressive stress is developed during the lithium deintercalation in a single-alpha-phase region, causing the cracking of the $Li_{1-δ}CoO_2$ films. In chapter IV, ionic diffusion through electrolyte towards self-affine fractal electrode was experimentally investigated under the ...
Advisors
Pyun, Su-Il변수일
Description
한국과학기술원 : 신소재공학과,
Publisher
한국과학기술원
Issue Date
2005
Identifier
244828/325007  / 020015015
Language
eng
Description

학위논문(박사) - 한국과학기술원 : 신소재공학과, 2005.2, [ xxi, 271 p. ]

Keywords

Lithium transport; Surface roughness; Intercalation-induced stress; 프랙탈; 리튬 코발트 산화물 박막 전극; 리튬 이동; 표면 거칠기; 인터칼레이션에 의해 유발되는 응력; Fractal

URI
http://hdl.handle.net/10203/49816
Link
http://library.kaist.ac.kr/search/detail/view.do?bibCtrlNo=244828&flag=dissertation
Appears in Collection
MS-Theses_Ph.D.(박사논문)
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