| Literature DB >> 32211378 |
Jae Hyeon Jo1, Chang-Heum Jo1, Zhengfu Qiu2, Hitoshi Yashiro3, Liyi Shi2, Zhuyi Wang2, Shuai Yuan2, Seung-Taek Myung1.
Abstract
class="Chemical">Sodium-ion batteries (Entities:
Keywords: battery; cellulose; composite; separator; sodium
Year: 2020 PMID: 32211378 PMCID: PMC7076124 DOI: 10.3389/fchem.2020.00153
Source DB: PubMed Journal: Front Chem ISSN: 2296-2646 Impact factor: 5.221
Scheme 1Schematic illustration of a cellulose-polyacrlonitrile-alumina separator.
Figure 1(a) SEM image and photograph of cellulose–PAN separator; (b) SEM image of cellulose–PAN–Al2O3 composite separator; (c) SEM image and EDX mapping data (Al, C, O elements) of cellulose–PAN-Al2O3 composite separator; (d) SEM image on side for cellulose–PAN-Al2O3 composite separator (inset: SEM image of cellulose–PAN-Al2O3 composite separator at pierced point). (e) The magnified SEM image of cellulose–PAN-Al2O3 composite separator with EDX mapping result for Al, C, and O elements. (f) XRD pattern of bare and cellulose–PAN-Al2O3 composite separator; (g) ToF-SIMS data of cellulose–PAN-Al2O3 composite separator for AlO+ (m = 42.97) fragment.
Figure 2(a) Twisting, (b) rolling, and (c) folding test results for cellulose–PAN-Al2O3 composite separator; (d) stress–strain curves of uncoated (bare) and cellulose–PAN-Al2O3 composite separator; (e) puncture strength curves of uncoated (bare) and cellulose–PAN-Al2O3 composite separator.
Figure 3(A) Wettability, (B) Gurley value, (C) Electrolyte uptake, and (D) ionic conductivity of electrolyte soaked bare and cellulose–PAN-Al2O3 composite separator. Sodium transference number of (E) bare and (F) cellulose–PAN-Al2O3 composite separator.
Figure 4(a) TGA curves and (b) DTG curves of bare and cellulose–PAN-Al2O3 composite separator; (c) thermal shrinkage rate of bare and cellulose–PAN-Al2O3 composite separator after heat-treatment in temperature range of 25-300°C.
Thermal shrinking rate.
| Cellulose-PAN | 0% | 0% | 0% | 4.7% |
| Cellulose-PAN-Al2O3 | 0% | 0% | 0% | 0% |
Figure 5(A) First charge and discharge curve of C-NaCrO2/Na cells using bare and cellulose–PAN-Al2O3 composite separator; (B,C) cycling performance at rates of 1C and 10C for C-NaCrO2/Na cells using cellulose–PAN-Al2O3 composite separator; (D) Rate capability and (E) cycling performance (0.5C) at 80°C for C-NaCrO2/Na cells using cellulose–PAN-Al2O3 composite separator.
Figure 6(A) First charge and discharge curves of C-NaCrO2 half cell (red), hard carbon half cell (black), and C-NaCrO2/hard carbon full cell (blue) using cellulose–PAN-Al2O3 composite separator; (B,C) cycling performance of C-NaCrO2/hard carbon full cell (blue) using cellulose–PAN-Al2O3 composite separator. (D) Cycling performance at 10 C of C-NaCrO2/hard carbon full cell (blue) using cellulose–PAN-Al2O3 composite separator.
Figure 7ToF-SIMS data of cellulose–PAN-Al2O3 composite separator for (top) fresh and (bottom) cycled separator. (A) NaF+ (m = 41.9), (B) (m = 45.97), and (C) AlOF+ (m = 71.97) fragments in a Na cell.
Figure 8Schematic illustration for the functionalities of a cellulose-PAN-Al2O3 composite separator.