語系:
繁體中文
English
說明(常見問題)
回圖書館首頁
手機版館藏查詢
登入
回首頁
切換:
標籤
|
MARC模式
|
ISBD
Theoretical study on graphite and li...
~
Yoon, Gabin.
FindBook
Google Book
Amazon
博客來
Theoretical study on graphite and lithium metal as anode materials for next-generation rechargeable batteries
紀錄類型:
書目-電子資源 : Monograph/item
正題名/作者:
Theoretical study on graphite and lithium metal as anode materials for next-generation rechargeable batteries/ by Gabin Yoon.
作者:
Yoon, Gabin.
出版者:
Singapore :Springer Nature Singapore : : 2022.,
面頁冊數:
xiv, 65 p. :ill. (some col.), digital ;24 cm.
附註:
"Doctoral thesis accepted by Seoul National University, Seoul, South Korea."
內容註:
1 Introduction -- 1.1 Demands for energy storage system -- 1.2 Li-ion batteries -- 1.3 Post Li-ion batteries -- 1.3.1 Na-ion batteries -- 1.3.2 Li metal batteries -- 1.4 References -- 2 Na intercalation chemistry in graphite -- 2.1 Introduction -- 2.2 Experimental and computational details -- 2.2.1 Materials -- 2.2.2 Electrode preparation and electrochemical measurements -- 2.2.3 Operando XRD analysis -- 2.2.4 Computational details -- 2.3 Staging behavior upon Na-solvent co-intercalation -- 2.4 Na-solvent co-intercalation into graphite structure -- 2.5 Solvent dependency on electrochemical properties -- 2.6 Conclusions -- 2.7 References -- 3 Conditions for reversible Na intercalation in graphite -- 3.1 Introduction -- 3.2 Computational details -- 3.3 Unstable Na intercalation in graphite -- 3.3.1 Destabilization energy of metal reconstruction -- 3.3.2 Destabilization energy of graphite framework upon intercalation -- 3.3.3 Local interaction between alkali metal ions and the graphite framework -- 3.3.4 Mitigating the unfavorable local interaction between Na and graphene layers -- 3.4 Conditions of solvents for reversible Na intercalation into graphite -- 3.4.1 Solvent dependency on reversible Na-solvent co-intercalation behavior -- 3.4.2 Thermodynamic stability of Na-solvent complex -- 3.4.3 Chemical stability of Na-solvent complex -- 3.4.4 Unified picture of Na-solvent co-intercalation behavior -- 3.5 Conclusions -- 3.6 References -- 4 Electrochemical deposition and stripping behavior of Li metal -- 4.1 Introduction -- 4.2 Computational details -- 4.3 Effect of deposition rate -- 4.4 Effect of surface geometry -- 4.5 Implications of SEI layer properties -- 4.6 Consequences of the history of deposition and stripping -- 4.7 Conclusions -- 4.8 References.
Contained By:
Springer Nature eBook
標題:
Storage batteries - Materials. -
電子資源:
https://doi.org/10.1007/978-981-13-8914-6
ISBN:
9789811389146
Theoretical study on graphite and lithium metal as anode materials for next-generation rechargeable batteries
Yoon, Gabin.
Theoretical study on graphite and lithium metal as anode materials for next-generation rechargeable batteries
[electronic resource] /by Gabin Yoon. - Singapore :Springer Nature Singapore :2022. - xiv, 65 p. :ill. (some col.), digital ;24 cm. - Springer theses,2190-5061. - Springer theses..
"Doctoral thesis accepted by Seoul National University, Seoul, South Korea."
1 Introduction -- 1.1 Demands for energy storage system -- 1.2 Li-ion batteries -- 1.3 Post Li-ion batteries -- 1.3.1 Na-ion batteries -- 1.3.2 Li metal batteries -- 1.4 References -- 2 Na intercalation chemistry in graphite -- 2.1 Introduction -- 2.2 Experimental and computational details -- 2.2.1 Materials -- 2.2.2 Electrode preparation and electrochemical measurements -- 2.2.3 Operando XRD analysis -- 2.2.4 Computational details -- 2.3 Staging behavior upon Na-solvent co-intercalation -- 2.4 Na-solvent co-intercalation into graphite structure -- 2.5 Solvent dependency on electrochemical properties -- 2.6 Conclusions -- 2.7 References -- 3 Conditions for reversible Na intercalation in graphite -- 3.1 Introduction -- 3.2 Computational details -- 3.3 Unstable Na intercalation in graphite -- 3.3.1 Destabilization energy of metal reconstruction -- 3.3.2 Destabilization energy of graphite framework upon intercalation -- 3.3.3 Local interaction between alkali metal ions and the graphite framework -- 3.3.4 Mitigating the unfavorable local interaction between Na and graphene layers -- 3.4 Conditions of solvents for reversible Na intercalation into graphite -- 3.4.1 Solvent dependency on reversible Na-solvent co-intercalation behavior -- 3.4.2 Thermodynamic stability of Na-solvent complex -- 3.4.3 Chemical stability of Na-solvent complex -- 3.4.4 Unified picture of Na-solvent co-intercalation behavior -- 3.5 Conclusions -- 3.6 References -- 4 Electrochemical deposition and stripping behavior of Li metal -- 4.1 Introduction -- 4.2 Computational details -- 4.3 Effect of deposition rate -- 4.4 Effect of surface geometry -- 4.5 Implications of SEI layer properties -- 4.6 Consequences of the history of deposition and stripping -- 4.7 Conclusions -- 4.8 References.
This thesis describes in-depth theoretical efforts to understand the reaction mechanism of graphite and lithium metal as anodes for next-generation rechargeable batteries. The first part deals with Na intercalation chemistry in graphite, whose understanding is crucial for utilizing graphite as an anode for Na-ion batteries. The author demonstrates that Na ion intercalation in graphite is thermodynamically unstable because of the unfavorable Na-graphene interaction. To address this issue, the inclusion of screening moieties, such as solvents, is suggested and proven to enable reversible Na-solvent cointercalation in graphite. Furthermore, the author provides the correlation between the intercalation behavior and the properties of solvents, suggesting a general strategy to tailor the electrochemical intercalation chemistry. The second part addresses the Li dendrite growth issue, which is preventing practical application of Li metal anodes. A continuum mechanics study considering various experimental conditions reveals the origins of irregular growth of Li metal. The findings provide crucial clues for developing effective counter strategies to control the Li metal growth, which will advance the application of high-energy-density Li metal anodes.
ISBN: 9789811389146
Standard No.: 10.1007/978-981-13-8914-6doiSubjects--Topical Terms:
3220522
Storage batteries
--Materials.
LC Class. No.: TK2941 / .Y66 2022
Dewey Class. No.: 621.3124240284
Theoretical study on graphite and lithium metal as anode materials for next-generation rechargeable batteries
LDR
:04243nmm a2200349 a 4500
001
2302421
003
DE-He213
005
20220708142722.0
006
m d
007
cr nn 008maaau
008
230409s2022 si s 0 eng d
020
$a
9789811389146
$q
(electronic bk.)
020
$a
9789811389139
$q
(paper)
024
7
$a
10.1007/978-981-13-8914-6
$2
doi
035
$a
978-981-13-8914-6
040
$a
GP
$c
GP
041
0
$a
eng
050
4
$a
TK2941
$b
.Y66 2022
072
7
$a
PNRH
$2
bicssc
072
7
$a
SCI013050
$2
bisacsh
072
7
$a
PNRH
$2
thema
082
0 4
$a
621.3124240284
$2
23
090
$a
TK2941
$b
.Y59 2022
100
1
$a
Yoon, Gabin.
$3
3602738
245
1 0
$a
Theoretical study on graphite and lithium metal as anode materials for next-generation rechargeable batteries
$h
[electronic resource] /
$c
by Gabin Yoon.
260
$a
Singapore :
$b
Springer Nature Singapore :
$b
Imprint: Springer,
$c
2022.
300
$a
xiv, 65 p. :
$b
ill. (some col.), digital ;
$c
24 cm.
490
1
$a
Springer theses,
$x
2190-5061
500
$a
"Doctoral thesis accepted by Seoul National University, Seoul, South Korea."
505
0
$a
1 Introduction -- 1.1 Demands for energy storage system -- 1.2 Li-ion batteries -- 1.3 Post Li-ion batteries -- 1.3.1 Na-ion batteries -- 1.3.2 Li metal batteries -- 1.4 References -- 2 Na intercalation chemistry in graphite -- 2.1 Introduction -- 2.2 Experimental and computational details -- 2.2.1 Materials -- 2.2.2 Electrode preparation and electrochemical measurements -- 2.2.3 Operando XRD analysis -- 2.2.4 Computational details -- 2.3 Staging behavior upon Na-solvent co-intercalation -- 2.4 Na-solvent co-intercalation into graphite structure -- 2.5 Solvent dependency on electrochemical properties -- 2.6 Conclusions -- 2.7 References -- 3 Conditions for reversible Na intercalation in graphite -- 3.1 Introduction -- 3.2 Computational details -- 3.3 Unstable Na intercalation in graphite -- 3.3.1 Destabilization energy of metal reconstruction -- 3.3.2 Destabilization energy of graphite framework upon intercalation -- 3.3.3 Local interaction between alkali metal ions and the graphite framework -- 3.3.4 Mitigating the unfavorable local interaction between Na and graphene layers -- 3.4 Conditions of solvents for reversible Na intercalation into graphite -- 3.4.1 Solvent dependency on reversible Na-solvent co-intercalation behavior -- 3.4.2 Thermodynamic stability of Na-solvent complex -- 3.4.3 Chemical stability of Na-solvent complex -- 3.4.4 Unified picture of Na-solvent co-intercalation behavior -- 3.5 Conclusions -- 3.6 References -- 4 Electrochemical deposition and stripping behavior of Li metal -- 4.1 Introduction -- 4.2 Computational details -- 4.3 Effect of deposition rate -- 4.4 Effect of surface geometry -- 4.5 Implications of SEI layer properties -- 4.6 Consequences of the history of deposition and stripping -- 4.7 Conclusions -- 4.8 References.
520
$a
This thesis describes in-depth theoretical efforts to understand the reaction mechanism of graphite and lithium metal as anodes for next-generation rechargeable batteries. The first part deals with Na intercalation chemistry in graphite, whose understanding is crucial for utilizing graphite as an anode for Na-ion batteries. The author demonstrates that Na ion intercalation in graphite is thermodynamically unstable because of the unfavorable Na-graphene interaction. To address this issue, the inclusion of screening moieties, such as solvents, is suggested and proven to enable reversible Na-solvent cointercalation in graphite. Furthermore, the author provides the correlation between the intercalation behavior and the properties of solvents, suggesting a general strategy to tailor the electrochemical intercalation chemistry. The second part addresses the Li dendrite growth issue, which is preventing practical application of Li metal anodes. A continuum mechanics study considering various experimental conditions reveals the origins of irregular growth of Li metal. The findings provide crucial clues for developing effective counter strategies to control the Li metal growth, which will advance the application of high-energy-density Li metal anodes.
650
0
$a
Storage batteries
$x
Materials.
$3
3220522
650
0
$a
Graphite
$x
Industrial applications.
$3
3602739
650
0
$a
Lithium
$x
Industrial applications.
$3
3602740
650
1 4
$a
Electrochemistry.
$3
557553
650
2 4
$a
Mechanical and Thermal Energy Storage.
$3
3591860
650
2 4
$a
Materials for Energy and Catalysis.
$3
3591870
650
2 4
$a
Microsystems and MEMS.
$3
3538640
710
2
$a
SpringerLink (Online service)
$3
836513
773
0
$t
Springer Nature eBook
830
0
$a
Springer theses.
$3
1314442
856
4 0
$u
https://doi.org/10.1007/978-981-13-8914-6
950
$a
Chemistry and Materials Science (SpringerNature-11644)
筆 0 讀者評論
館藏地:
全部
電子資源
出版年:
卷號:
館藏
1 筆 • 頁數 1 •
1
條碼號
典藏地名稱
館藏流通類別
資料類型
索書號
使用類型
借閱狀態
預約狀態
備註欄
附件
W9443970
電子資源
11.線上閱覽_V
電子書
EB TK2941 .Y66 2022
一般使用(Normal)
在架
0
1 筆 • 頁數 1 •
1
多媒體
評論
新增評論
分享你的心得
Export
取書館
處理中
...
變更密碼
登入