Improving Power Factor of Multi-walled Carbon Nanotube Fibers through Laser Exposure

Abstract In the present study, we have modified multi-walled carbon nanotube (MWCNT) fibers using a high-power visible laser beam (∼532 nm) with a pulse energy density of ∼0.48 mJ/cm2 under ambient conditions. The laser-irradiated fibers exhibited significant improvement in electrical conductivity with a minimal impact on the Seebeck coefficient. The optimally irradiated fibers (50 s exposure time) showed the highest power factor of ∼65 μW/mK2 near room temperature, representing an enhancement of nearly 56% compared to pristine fibers. Detailed characterization revealed that the rapid temperature rise of samples on laser exposure leads to defect annihilation, removal of amorphous carbon, and improved alignment of MWCNTs within the fiber. These modifications collectively contribute to the improvement in the thermoelectric performance and fracture strength of laser-irradiated samples. The present scalable approach of improving the thermoelectric and mechanical properties of MWCNT fibers through laser beam exposure holds great promise for wearable thermoelectric applications.

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Publication Details

Journal
ACS Applied Energy Materials
Published
2026-09-17
DOI
https://doi.org/10.1021/acsaem.6c02522
Primary Topic
Carbon Nanotubes in Composites
Type
article
Field-Weighted Citation Impact
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Improving Power Factor of Multi-walled Carbon Nanotube Fibers through Laser Exposure

Anik Mazumder, Jitendra Bahadur, Amit Kaushal, Rajath Alexander et al.
ACS Applied Energy Materials
Carbon Nanotubes in Composites
article

Improving Power Factor of Multi-walled Carbon Nanotube Fibers through Laser Exposure

Anik Mazumder, Jitendra Bahadur, Amit Kaushal, Rajath Alexander, Meetu Bharti, Alka B. Garg, P. Jha, Ajay Singh, V.S. Rawat, Suman K. Mishra
article en

Abstract

Abstract In the present study, we have modified multi-walled carbon nanotube (MWCNT) fibers using a high-power visible laser beam (∼532 nm) with a pulse energy density of ∼0.48 mJ/cm2 under ambient conditions. The laser-irradiated fibers exhibited significant improvement in electrical conductivity with a minimal impact on the Seebeck coefficient. The optimally irradiated fibers (50 s exposure time) showed the highest power factor of ∼65 μW/mK2 near room temperature, representing an enhancement of nearly 56% compared to pristine fibers. Detailed characterization revealed that the rapid temperature rise of samples on laser exposure leads to defect annihilation, removal of amorphous carbon, and improved alignment of MWCNTs within the fiber. These modifications collectively contribute to the improvement in the thermoelectric performance and fracture strength of laser-irradiated samples. The present scalable approach of improving the thermoelectric and mechanical properties of MWCNT fibers through laser beam exposure holds great promise for wearable thermoelectric applications.

ACS Applied Energy Materials
Homi Bhabha National Institute (IN), Bhabha Atomic Research Center Hospital (IN), Memorial Foundation (US)
Affordable and clean energy
Openalex Percentile: Top 24%
Carbon Nanotubes in Composites
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Improving Power Factor of Multi-walled Carbon Nanotube Fibers through Laser Exposure — Anik Mazumder, Jitendra Bahadur, et al. · ACS Applied Energy Materials (2026) | TGRS Research Map | TGRS