Multifunctional Nanogenerator‐Integrated Metamaterial Concrete Systems for Smart Civil Infrastructure

Author:

Barri Kaveh1ORCID,Zhang Qianyun2,Kline Jake3,Lu Wenyun3,Luo Jianzhe3,Sun Zhe3,Taylor Brandon E.3,Sachs Steven G.3,Khazanovich Lev3,Wang Zhong Lin45,Alavi Amir H.36ORCID

Affiliation:

1. Department of Civil and Systems Engineering Johns Hopkins University Baltimore MD USA

2. Department of Civil Engineering New Mexico State University Las Cruces NM USA

3. Department of Civil and Environmental Engineering University of Pittsburgh Pittsburgh PA USA

4. School of Materials Science and Engineering Georgia Institute of Technology Atlanta GA USA

5. Beijing Institute of Nanoenergy and Nanosystems Chinese Academy of Sciences Beijing China

6. Department of Mechanical Engineering and Materials Science University of Pittsburgh Pittsburgh PA USA

Abstract

AbstractCreating multifunctional concrete materials with advanced functionalities and mechanical tunability is a critical step toward reimagining the traditional civil infrastructure systems. Here, the concept of nanogenerator‐integrated mechanical metamaterial concrete is presented to design lightweight and mechanically tunable concrete systems with energy harvesting and sensing functionalities. The proposed metamaterial concrete systems are created via integrating the mechanical metamaterial and nano‐energy‐harvesting paradigms. These advanced materials are composed of reinforcement auxetic polymer lattices with snap‐through buckling behavior fully embedded inside a conductive cement matrix. We rationally design their composite structures to induce contact‐electrification between the layers under mechanical excitations/triggering. The conductive cement enhanced with graphite powder serves as the electrode in the proposed systems, while providing the desired mechanical performance. Experimental studies are conducted to investigate the mechanical and electrical properties of the designed prototypes. The metamaterial concrete systems are tuned to achieve up to 15% compressibility under cycling loading. The power output of the nanogenerator‐integrated metamaterial concrete prototypes reaches 330 µW. Furthermore, the self‐powered sensing functionality of the nanogenerator concrete systems for distributed health monitoring of large‐scale concrete structures is demonstrated. The metamaterial concrete paradigm can possibly enable the design of smart civil infrastructure systems with a broad range of advanced functionalities.

Funder

Pennsylvania Department of Transportation

University of Pittsburgh

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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