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January 14, 2026Advanced Engineering Materials0 citations

Enhanced Triboelectric Nanogenerator Performance Using Torrefied Biowaste Dielectrics

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AÖAbdurrahman ÖzenOİOsman İpekHCHumberto García Castellanos

Key Points

  • This study aims to investigate the use of torrefied biowaste materials as dielectrics in triboelectric nanogenerators.
  • Evaluated three biowaste materials: torrefied pine sawdust, chicken manure, and rose pulp.
  • Characterized materials using scanning electron microscopy and electrical performance analysis.
  • Experimented with varying weight fractions (2.5-10%) of the biowaste materials in silicone matrices.
  • Optimal embedding ratio for torrefied pine sawdust and chicken manure is 7.5 wt%, achieving maximum outputs of 184 and 222 mW.
  • Rose pulp reaches peak performance at 2.5 wt%, generating 176 mW.
  • Highest open-circuit voltages recorded were 1250 V for pine sawdust, 1400 V for chicken manure, and 1325 V for rose pulp.

Abstract

Triboelectric nanogenerators (TENGs) emerge as efficient energy‐harvesting devices that convert mechanical energy into electricity. While various dielectric materials have been explored, the potential of torrefied biowaste materials as dielectric layers remains underexplored. This study investigates the triboelectric performance of three unique biowaste materials—torrefied pine sawdust (P.S.), chicken manure (C.M.), and rose pulp (R.P.)—embedded in silicone matrices at varying weight fractions (2.5–10%). The study employs comprehensive material characterization techniques, including scanning electron microscope imaging and electrical performance analysis, to evaluate charge accumulation, dielectric properties, and power generation efficiency. The results reveal that the optimal embedding ratio is 7.5 wt% for P.S. and C.M., yielding maximum power outputs of 184 and 222 mW, respectively, at 1 MΩ load resistance. In contrast, R.P. exhibits peak performance at 2.5 wt%, generating 176 mW. The highest open‐circuit voltage values are recorded as 1250 V for P.S., 1400 V for C.M., and 1325 V for R.P. at 50 MΩ resistance. The findings highlight that torrefied C.M. provides superior charge retention and power stability, outperforming P.S. and R.P. The study bridges a critical research gap by demonstrating the feasibility of torrefied biowaste as an eco‐friendly alternative for enhancing TENG efficiency.

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Cite This Study

Özen et al. (2026) studied this question.

synapsesocial.com/papers/6966e73513bf7a6f02bffca8https://doi.org/10.1002/adem.202502668
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