Effect of plasma treatment on electrochemical performance of lignin-based carbon fibers
Artikel i vetenskaplig tidskrift, 2023

The abundant and renewable nature of lignin obtained from wood renders it as a sustainable carbon resource for energy storage applications. However, their environmentally unfavorable processing conditions and limited energy storage performance prohibit the use of lignin-based carbon materials' use as supercapacitor electrodes. The material's properties require advancement to overcome the limitation of low specific capacitances. In this study, we report on the impact on the electrochemical performance of inherently hydrophobic lignin-based carbon fibers (LCF) by subjecting them to a mild plasma treatment. The electrode's capacitance was thus increased by 20%, with better rate capability and energy-power performance (11 Wh/kg and 0.8 kW/kg) in the KOH electrolyte. The quantified improvements were attributed to the capacitive functional groups, and enhanced surface wettability, which increased ion accessibility to active surface area improving charge-transfer ability to the surface with more additional functional groups. Remarkably, the selected plasma conditions introduced mostly desirable functional groups that limited any parasitic faradaic reactions prone to affect the device's long-term cycling stability and self-discharge characteristics. Furthermore, the impact of different inherent and introduced oxygen surface functional groups, including COO−, C[sbnd]OH, C[sbnd]O, and C[dbnd]O, on the capacitive performance of these fibers at different device conditions (such as cycling and electrochemical activation) was investigated in different aqueous electrolytes. To ensure environmental favorability, the electrospinning of lignin fibers was conducted using a high molecular fraction of lignin without the inclusion of any fossil-based co-spinning polymers.

Lignin

Surface functional groups

Carbon fiber

Wettability

Supercapacitor

Författare

Azega Rajendra Babu Kalai Arasi

Chalmers, Mikroteknologi och nanovetenskap, Elektronikmaterial

Wallenberg Wood Science Center (WWSC)

Mohammad Mazharul Haque

Chalmers, Mikroteknologi och nanovetenskap, Elektronikmaterial

Qi Li

Smoltek AB

Omid Hosseinaei

RISE Research Institutes of Sweden

Hans Theliander

Wallenberg Wood Science Center (WWSC)

Chalmers, Kemi och kemiteknik, Kemiteknik

Peter Enoksson

Enoaviatech AB

Chalmers, Mikroteknologi och nanovetenskap, Elektronikmaterial

Per Lundgren

Chalmers, Mikroteknologi och nanovetenskap, Elektronikmaterial

Journal of Electroanalytical Chemistry

1572-6657 (ISSN)

Vol. 946 117723

Ämneskategorier

Pappers-, massa- och fiberteknik

Annan kemi

DOI

10.1016/j.jelechem.2023.117723

Mer information

Senast uppdaterat

2023-09-21