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Harvesting low-grade heat from both human metabolism and environmental waste through thermoelectric fabrics offers a sustainable pathway for wearable power generation. However, a critical challenge exists in establishing substantial temperature differentials for continuous thermoelectric generation while maintaining physiologically comfortable skin temperatures in dynamically variable environments. Herein, we present a dynamic radiation-modulated sandwich-structured fabric capable of diurnally adaptive operation that simultaneously enables thermal comfort regulation and thermoelectric energy harvesting. Based on a parallel dual-spinneret blow-spinning technique, we engineer all-fibrous thermoelectric fabrics with asymmetric multi-walled carbon nanotube (MWCNT) and silver nanowire (AgNW) electrodes. The optimized sandwich fabric achieves an out-of-plane temperature gradient (ΔT) of 9 °C under 1 kW·m−2 daytime solar irradiation and −5 °C at night (ambient temperature of 28 °C), while maintaining skin-contact temperatures within the physiological comfort range (35.5–38.3 °C). Theoretical and experimental studies reveal that these self-regulated bidirectional temperature gradients result from asymmetric optical absorption/emission properties between the MWCNT top layer (solar absorptance αsolar = 91%, mid-infrared emissivity εMIR = 87%) and the AgNW bottom layer (αsolar = 18%, εMIR = 20%). This effect is synergistically enhanced by the hierarchical porous fibrous interlayer with confined thermal transfer. Outdoor experiments demonstrate stable diurnal operation for thermal comfort and energy harvesting, generating a peak voltage of 20 mV through modular integration of sandwich fabrics.

This is an open access article under the terms of the Creative Commons Attribution 4.0 International License (CC BY 4.0, https://creativecommons.org/licenses/by/4.0/).
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