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    Ultra-high thermal effusivity materials for resonant ambient thermal energy harvesting

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    Type
    Article
    Authors
    Cottrill, Anton L.
    Liu, Albert Tianxiang
    Kunai, Yuichiro
    Koman, Volodymyr B.
    Kaplan, Amir
    Mahajan, Sayalee G.
    Liu, Pingwei
    Toland, Aubrey R.
    Strano, Michael S.
    KAUST Grant Number
    OSR-2015-Sensors-2700
    Date
    2018-02-14
    Online Publication Date
    2018-02-14
    Print Publication Date
    2018-12
    Permanent link to this record
    http://hdl.handle.net/10754/629739
    
    Metadata
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    Abstract
    Materials science has made progress in maximizing or minimizing the thermal conductivity of materials; however, the thermal effusivity—related to the product of conductivity and capacity—has received limited attention, despite its importance in the coupling of thermal energy to the environment. Herein, we design materials that maximize the thermal effusivity by impregnating copper and nickel foams with conformal, chemical-vapor-deposited graphene and octadecane as a phase change material. These materials are ideal for ambient energy harvesting in the form of what we call thermal resonators to generate persistent electrical power from thermal fluctuations over large ranges of frequencies. Theory and experiment demonstrate that the harvestable power for these devices is proportional to the thermal effusivity of the dominant thermal mass. To illustrate, we measure persistent energy harvesting from diurnal frequencies, extracting as high as 350 mV and 1.3 mW from approximately 10 °C diurnal temperature differences.
    Citation
    Cottrill AL, Liu AT, Kunai Y, Koman VB, Kaplan A, et al. (2018) Ultra-high thermal effusivity materials for resonant ambient thermal energy harvesting. Nature Communications 9. Available: http://dx.doi.org/10.1038/s41467-018-03029-x.
    Sponsors
    The authors acknowledge the Office of Naval Research (ONR), under award N00014-16-1-2144, and King Abdullah University of Science and Technology (KAUST), under award OSR-2015-Sensors-2700, for their financial support regarding this project. We would like to thank Lain-Jong (Lance) Li and Atif Shamim at KAUST for useful discussions regarding the research. V.B.K. is supported by The Swiss National Science Foundation (project no. P2ELP3 162149). We would also like to thank Sensirion for supplying us with high-accuracy digital temperature sensors with BluetoothTM capabilities.
    Publisher
    Springer Nature
    Journal
    Nature Communications
    DOI
    10.1038/s41467-018-03029-x
    ae974a485f413a2113503eed53cd6c53
    10.1038/s41467-018-03029-x
    Scopus Count
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