Advancing Charge Density in Temperature‐Dependent Amphiphile Metal–Organic Polyhedra‐Based Triboelectric Nanogenerators

Author:

Ippili Swathi1,Kumar Gobbilla Sai2,Sharma Arti3,Ko Yoonah4,Hong Seungbum4,Goddati Mahendra5,Saini Haneesh2,Lee Jaebeom56,Yang Tae‐Youl1,Siddhanta Soumik3,Jella Venkatraju1,Yoon Soon‐Gil1,Jayaramulu Kolleboyina2ORCID

Affiliation:

1. Department of Materials Science and Engineering Chungnam National University Daejeon 34134 Republic of Korea

2. Hybrid Porous Materials Laboratory, Department of Chemistry Indian Institute of Technology Jammu Jammu and Kashmir 181221 India

3. Department of Chemistry Indian Institute of Technology Delhi Hauz Khas, New Delhi Delhi 110016 India

4. Department of Materials Science and Engineering Korea Advanced Institute of Science and Technology Daejeon 34141 Republic of Korea

5. Department of Chemistry Chemical Engineering and Applied Chemistry Chungnam National University Daejeon 34134 Republic of Korea

6. Institute of Materials Chemistry Chungnam National University Daejeon 34134 South Korea

Abstract

AbstractIn this study, a mechanically flexible structure, a cuboctahedral metal‐organic polyhedra (MOP) Cu24[5‐(octyloxy) isophthalic acid]24 Cu (II) paddlewheel clusters coordinated with (5‐(octyloxy) isophthalate), resulting in significantly enhanced hydrolytic stability are prepared. It should be noted that CuMOP‐1 exhibits evenly and symmetrically distributed non‐polar long alkyl chains and polar hydroxy groups, facilitating self‐assembly into higher‐order structures reminiscent of amphiphiles. Furthermore, the resultant CuMOP‐1 undergoes a phase change at 150–160 °C as confirmed temperature‐dependent Raman spectroscopy (RS), thermogravimetric analysis and Differential Scanning Calorimetry (TGA‐DSC). The possible use of Cu‐MOP‐1 for capturing mechanical energy is demonstrated by creating a flexible hybrid piezoelectric‐triboelectric nanogenerator (HP‐TENG). The resultant CuMOP‐1@ Polyvinylidene fluoride(PVDF) membrane‐based HP‐TENG demonstrates enhanced triboelectric output voltage of 547.5 V, current density of 15.16 µAcm−2, and power density of 2.8 mWcm−2 due to its increased surface charge density and a substantial rise in the dielectric constant. Furthermore, the amphiphiles and phase change in CuMOP‐1 lead to ∽73% increase in voltage and 60% in current density of HP‐TENG in high‐temperature (140 °C) environments. HP‐TENG also exhibits exceptional temperature‐ and pressure‐sensing abilities, with sensitivities of 1.81 V°C−1 and 7.12 V°kPa−1, respectively, showcasing its feasibility over a wide range of temperatures and pressures.

Funder

National Research Foundation of Korea

Ministry of Education

Publisher

Wiley

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