Publication detail

Polymer Composites with Quantum Dots as Potential Electrode Materials for Supercapacitors Application: A Review

Das, HT. Barai, P. Dutta, S. Das, N. Das, P. Roy, M. Alauddin, M. Barai, HR.

Original Title

Polymer Composites with Quantum Dots as Potential Electrode Materials for Supercapacitors Application: A Review

Type

journal article in Web of Science

Language

English

Original Abstract

Owing to the nanometer size range, Quantum Dots (QDs) have exhibited unique physical and chemical properties which are favourable for different applications. Especially, due to their quantum confinement effect, excellent optoelectronic characteristics is been observed. This considerable progress has not only uplifted the singular usage of QDs, but also encouraged to prepare various hybrid materials to achieve superior efficiency by eliminating certain shortcomings. Such issues can be overcome by compositing QDs with polymers. Via employing polymer composite with QDs (PQDs) for supercapacitor applications, adequate conductivity, stability, excellent energy density, and better specific capacitance is been achieved which we have elaborately discussed in this review. Researchers have already explored various types of polymer nanocomposite with different QDs such as carbonaceous QDs, transition metal oxide/sulphide QDs etc. as electrode material for supercapacitor application. Synthesis, application outcome, benefits, and drawbacks of these are explained to portray a better understanding. From the existing studies it is clearly confirmed that with using PQDs electrical conductivity, electrochemical reactivity, and the charge accumulation on the surface have prominently been improved which effected the fabricated supercapacitor device performance. More comprehensive fundamentals and observations are explained in the current review which indicates their promising scopes in upcoming times.

Keywords

polymers; Quantum Dots; nanocomposites; electrodes; electrolytes; supercapacitors; energy storage

Authors

Das, HT.; Barai, P.; Dutta, S.; Das, N.; Das, P.; Roy, M.; Alauddin, M.; Barai, HR.

Released

1. 3. 2022

Publisher

MDPI

Location

BASEL

ISBN

2073-4360

Periodical

Polymers

Year of study

14

Number

5

State

Swiss Confederation

Pages from

1053-1

Pages to

1053-20

Pages count

20

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