Detail publikačního výsledku

Moon Regolith Simulant-Based All-3D-Printed Triboelectric Nanogenerator for Effective Mechanical Energy Conversion

YOHANNAN, A.; SONIGARA, K.; VAGHASIYA, J.; PUMERA, M.

Originální název

Moon Regolith Simulant-Based All-3D-Printed Triboelectric Nanogenerator for Effective Mechanical Energy Conversion

Anglický název

Moon Regolith Simulant-Based All-3D-Printed Triboelectric Nanogenerator for Effective Mechanical Energy Conversion

Druh

Článek WoS

Originální abstrakt

Sustained human activity on the Moon will require energy systems that can be manufactured directly from lunar materials, avoiding the mass and cost constraints of transporting devices from the Earth. Here, we demonstrate a triboelectric nanogenerator (TENG) fabricated using a lunar regolith (LR) simulant as an active triboelectric component through a scalable 3D-printing strategy. LR incorporation significantly enhances charge generation in LR/PLA (poly(lactic acid)) composite electrodes by modifying surface properties and increasing effective contact electrification. Multiple electrode architectures were evaluated to optimize performance, with the best design delivering an open-circuit voltage of similar to 17.4 (+/- 0.4) V and a short-circuit current of similar to 0.96 (+/- 0.2) mu A at 10 Hz for a 20 x 30 mm device. The prototype is capable of real-scale power demonstrations, validating its practical utility. This work introduces a viable route for in situ resource utilization and 3D printing to establish LR-based triboelectric devices as a promising approach for energy autonomy in future lunar habitats.

Anglický abstrakt

Sustained human activity on the Moon will require energy systems that can be manufactured directly from lunar materials, avoiding the mass and cost constraints of transporting devices from the Earth. Here, we demonstrate a triboelectric nanogenerator (TENG) fabricated using a lunar regolith (LR) simulant as an active triboelectric component through a scalable 3D-printing strategy. LR incorporation significantly enhances charge generation in LR/PLA (poly(lactic acid)) composite electrodes by modifying surface properties and increasing effective contact electrification. Multiple electrode architectures were evaluated to optimize performance, with the best design delivering an open-circuit voltage of similar to 17.4 (+/- 0.4) V and a short-circuit current of similar to 0.96 (+/- 0.2) mu A at 10 Hz for a 20 x 30 mm device. The prototype is capable of real-scale power demonstrations, validating its practical utility. This work introduces a viable route for in situ resource utilization and 3D printing to establish LR-based triboelectric devices as a promising approach for energy autonomy in future lunar habitats.

Klíčová slova

Biopolymers; Layers; Nanogenerators; Organic polymers ;Plastics

Klíčová slova v angličtině

Biopolymers; Layers; Nanogenerators; Organic polymers ;Plastics

Autoři

YOHANNAN, A.; SONIGARA, K.; VAGHASIYA, J.; PUMERA, M.

Rok RIV

2026

Vydáno

19.02.2026

Nakladatel

Amer Chemical Soc

Periodikum

Energy & fuels

Svazek

40

Číslo

7

Stát

Spojené státy americké

Strany od

3551

Strany do

3561

Strany počet

11

URL

BibTex

@article{BUT201553,
  author="Alex {Yohannan} and Kevalkumar Kishorbhai {Sonigara} and Jayraj Vinubhai {Vaghasiya} and Martin {Pumera}",
  title="Moon Regolith Simulant-Based All-3D-Printed Triboelectric Nanogenerator for Effective Mechanical Energy Conversion",
  journal="Energy & fuels",
  year="2026",
  volume="40",
  number="7",
  pages="3551--3561",
  doi="10.1021/acs.energyfuels.5c04047",
  issn="0887-0624",
  url="https://pubs.acs.org/doi/10.1021/acs.energyfuels.5c04047?src=getftr&utm_source=clarivate&getft_integrator=clarivate"
}