Metal-Free, Bio-Triboelectric Nanogenerator Based on a Single Electrode of Bacterial Cellulose Modified with Carbon Black

Author:

Freire Andre L.1,Lima Lais R.2ORCID,Candido Iuri C. M.1,Silva Luygui G.3ORCID,Ribeiro Sidney J. L.3ORCID,Carrilho Emanuel2ORCID,Oliveira Thais L.4,de Oliveira Luiz Fernando C.4ORCID,Barud Hernane S.5,de Oliveira Helinando P.1ORCID

Affiliation:

1. Institute of Materials Science, Universidade Federal do Vale do São Francisco—UNIVASF, Juazeiro 48902-300, BA, Brazil

2. Instituto de Química de São Carlos, Universidade de São Paulo—USP, São Carlos 13566-590, SP, Brazil

3. Institute of Chemistry, São Paulo State University—UNESP, Araraquara 14800-060, SP, Brazil

4. Núcleo de Espectroscopia e Estrutura Molecular (NEEM), Departament of Chemistry, Universidade Federal de Juiz de Fora—UFJF, Juiz de Fora 36036-900, MG, Brazil

5. Biopolymers and Biomaterials Laboratory (BioPolMat), Universidade de Araraquara—UNIARA, Araraquara 14801-320, SP, Brazil

Abstract

Developing metal-free electrodes for prototypes of bio-based devices is an essential step in producing non-toxic components for implantable devices and wearables. In particular, the advancement in self-powered devices is a hot topic for several applications due to the possibility of creating free-battery devices and sensors. In this paper, the modification of bacterial cellulose by the progressive incorporation of carbon black (a conductive filler) was explored as a prototype for bio-based electrodes for triboelectric nanogenerators. This process was controlled by the percolation pathways’ activation through the contact of carbon black grains with the bacterial cellulose membrane, which represents a critical step in the overall process of optimization in the power output performance, reaching an open circuit voltage value of 102.3 V, short circuit current of 2 μA, and power density of 4.89 μW/cm2.

Funder

CAPES

FACEPE

FAPESB

FAPEMIG

CNPq

São Paulo Research Foundation

INCT/Polysaccharides

Anton Paar Company

Publisher

MDPI AG

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