| Literature DB >> 34947478 |
Inah Kang1, Taewoong Lee2, Young Rok Yoon1, Jee Woo Kim3, Byung-Kwon Kim3, Jinhee Lee1,4, Jin Hong Lee2, Sang Youl Kim1.
Abstract
We synthesized a new poly(triphenylamine), having a hyperbranched structure, and employed it in lithium-ion batteries as an organic cathode material. Two types of monomers were prepared with hydroxyl groups and nitro leaving groups, activated by a trifluoromethyl substituent, and then polymerized via the nucleophilic aromatic substitution reaction. The reactivity of the monomers differed depending on the number of hydroxyl groups and the A2B type monomer with one hydroxyl group successfully produced poly(triphenylamine). Based on thermal, optical, and electrochemical analyses, a composite poly(triphenylamine) electrode was made. The electrochemical performance investigations confirmed that the lithium-ion batteries, fabricated with the poly(triphenylamine)-based cathodes, had reasonable specific capacity values and stable cycling performance, suggesting the potential of this hyperbranched polymer in cathode materials for lithium-ion batteries.Entities:
Keywords: SNAr reaction; hyperbranched poly(triphenylamine); lithium-ion battery; polymer cathode; triphenylamine
Year: 2021 PMID: 34947478 PMCID: PMC8707362 DOI: 10.3390/ma14247885
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1Monomer structure.
Scheme 1Synthetic route of monomer 4 and 5.
Scheme 2Polymerization of monomer 4 and 5.
Figure 2Chemical shift of 4-K (above) and 5-K (below) (DMSO-d6, 150 MHz).
Figure 31H NMR spectra of PTPA (DMSO-d6, 600 MHz).
Figure 4(a) TGA and (b) DSC thermograms of the PTPA.
Figure 5(a) Normalized UV/Vis spectra of 5 (black) and PTPA (red) in acetone. (b) Cyclic voltammogram of 0.1 mM PTPA in acetonitrile, containing 100 mM TBAHFP at a scan rate of 50 mV/s.
Figure 6(a) Cyclic voltammogram of PTPA cathode at scan rate of 0.1 mV/s. (b) Rate capability of PTPA cathode at various current densities of 20, 50, 100, 300, 500 mA/g, and recovery step at current rate of 50 mA/g. (c) Long cycle test of PTPA cathode, at a current rate of 50 mA/g, between 2.5–4.2 V; specific capacity (red) and coulombic efficiency (black). (d) Corresponding charge-discharge voltage plots of PTPA cathode at 5th, 10th, 20th, and 30th cycle.