PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
April 26, 2026International Journal of Energy Research0 citationsOpen Access

Defect‐Anchored Carbon Nanotubes With Tailored Electronic Structure as a Single Platform for Thermal Energy Storage, Li‐Ion Battery Anodes, and Thermoelectric Conversion

View Full Paper
SMSyed Muhammad Zain MehdiMFMuhammad FaizanMMMan Mohan

Key Points

  • To explore the use of boron-doped carbon nanotubes in various energy applications including energy storage and conversion.
  • Synthesis of boron-doped carbon nanotubes via a single-step arc discharge method.
  • Evaluation across thermal energy storage, photothermal conversion, lithium-ion batteries, and thermoelectric generation domains.
  • Analysis of thermal conductivity, latent heat capacity, efficiency metrics, and reversible capacity.
  • Paraffin/B-CNT composite exhibited a thermal conductivity of 0.303 W/m·K and latent heat capacity of 144.7 J/g.
  • Photothermal conversion efficiency reached 91.0%, nearly three times higher than paraffin/As-CNT.
  • As Li-ion battery anodes, B-CNTs provided a reversible capacity of 361.02 mAh/g after 100 cycles.

Abstract

Heteroatom doping offers a unified and energy‐efficient strategy to tailor the electronic structure of carbon nanotubes (CNTs) for multifunctional energy applications. In this study, boron‐doped CNTs (B‐CNTs) synthesized via a single‐step arc discharge method are evaluated across four domains: thermal energy storage, photothermal conversion, lithium‐ion batteries, and thermoelectric generation. The present study benefits from p‐type defect formation in CNT, which includes a work function increase and a shifted Fermi level. In thermal energy storage, a paraffin/B‐CNT composite demonstrated superior thermal conductivity (0.303 W/m·K), latent heat capacity (144.7 J/g), and crystallinity (51.9%) due to enhanced dispersion and nanoconfinement. For photothermal conversion, the composite exhibited a broadened absorption spectrum and achieved a high efficiency of 91.0%, nearly three times higher than paraffin/As‐synthesized CNT (As‐CNT) composite. As an anode in lithium‐ion batteries, B‐CNTs delivered a reversible capacity of 361.02 mAh/g after 100 cycles, more than double that of pristine CNTs due to improved conductivity and Li + diffusion. Furthermore, in a paraffin/B‐CNT‐integrated thermoelectric module, enhanced interfacial heat transfer enabled stable heat‐source functionality and a conversion efficiency of 0.33%. These findings demonstrate the practical potential of B‐CNTs as a multifunctional material for improving performance in diverse energy storage and conversion systems.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Mehdi et al. (2026) studied this question.

synapsesocial.com/papers/69edad4b4a46254e215b4e83https://doi.org/10.1155/er/8883932
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Functionalized CNTs Enhancing Conduction and Interfacial Stability via Multiple Mechanisms in Ni‐Rich Cathodes2025
  2. 2Electrolyte‐Based One‐Shot Potential Application With Crosslinked Superbase Cation for Thermally Stable N‐Type Carbon Nanotubes With Tunable Thermoelectric Properties2025
  3. 3Engineering Multifunctional Surfaces: Unveiling the Extraordinary Electrical, Thermal, and Magnetic Properties of CVD-Synthesized Carbon Nanotubes via Nanofabrication2025
  4. 4One-step synthesis of B and N co-doped carbon nanotubes for high-stability lithium-ion batteries2024 · 4 citations
  5. 5Advanced Doping Method for Highly Conductive CNT Fibers with Enhanced Thermal Stability2024