TY - JOUR
T1 - Cu-HHTP/rGO nanocomposites with tunable heterointerfaces encapsulated in flexible solid-solid phase change films for self-healing and radar-infrared compatible camouflage
AU - Zhou, Bingqian
AU - Cheng, Haichuan
AU - Ma, Pengcheng
AU - Zhang, Lei
AU - Wu, Jianfeng
AU - Zhang, Baoliang
N1 - Publisher Copyright:
© 2026 Elsevier Ltd.
PY - 2026/10
Y1 - 2026/10
N2 - Multispectral compatible stealth materials are essential for modern military platforms to counter diverse detection threats. However, the inherent mechanism conflict between microwave absorption and infrared stealth hampers cross-band stealth in single-material systems. Herein, 2D Cu-HHTP/rGO functional fillers are embedded into a solid-solid phase change polyurethane (SHPEG) matrix to fabricate a flexible, self-healing composite film (Cu-HHTP/rGO/SHPEG) with radar-infrared dual-stealth. A synergistic regulation strategy of Schottky heterointerfaces and electrical conductivity is proposed, which induces a built-in electric field and optimizes dielectric loss. Cu-HHTP/rGO attains outstanding microwave absorption with a minimum reflection loss (RLmin) of −60.49 dB and an effective absorption bandwidth (EAB) of 7.51 GHz. Meanwhile, the dynamic cross-linking network modified with disulfide bonds ensures self-healing ability and structural stability of the SHPEG matrix. Based on the excellent thermal management capacity of SHPEG and the low infrared emissivity of Cu-HHTP/rGO, the Cu-HHTP/rGO/SHPEG film possesses remarkable integrated performance: RLmin reaching −52.8 dB, EAB covering 7.29 GHz, infrared emissivity as low as 0.239 and a phase transition enthalpy of 95.1 J/g. The composite film also exhibits exceptional flexibility, self-healing efficiency, shape stability and mechanical strength. This work provides new insights for resolving multiband stealth conflicts and promotes the development of advanced radar-infrared bifunctional materials.
AB - Multispectral compatible stealth materials are essential for modern military platforms to counter diverse detection threats. However, the inherent mechanism conflict between microwave absorption and infrared stealth hampers cross-band stealth in single-material systems. Herein, 2D Cu-HHTP/rGO functional fillers are embedded into a solid-solid phase change polyurethane (SHPEG) matrix to fabricate a flexible, self-healing composite film (Cu-HHTP/rGO/SHPEG) with radar-infrared dual-stealth. A synergistic regulation strategy of Schottky heterointerfaces and electrical conductivity is proposed, which induces a built-in electric field and optimizes dielectric loss. Cu-HHTP/rGO attains outstanding microwave absorption with a minimum reflection loss (RLmin) of −60.49 dB and an effective absorption bandwidth (EAB) of 7.51 GHz. Meanwhile, the dynamic cross-linking network modified with disulfide bonds ensures self-healing ability and structural stability of the SHPEG matrix. Based on the excellent thermal management capacity of SHPEG and the low infrared emissivity of Cu-HHTP/rGO, the Cu-HHTP/rGO/SHPEG film possesses remarkable integrated performance: RLmin reaching −52.8 dB, EAB covering 7.29 GHz, infrared emissivity as low as 0.239 and a phase transition enthalpy of 95.1 J/g. The composite film also exhibits exceptional flexibility, self-healing efficiency, shape stability and mechanical strength. This work provides new insights for resolving multiband stealth conflicts and promotes the development of advanced radar-infrared bifunctional materials.
KW - Electromagnetic microwave absorption
KW - Infrared stealth
KW - Polyurethane
KW - Schottky heterointerfaces
KW - Solid-solid phase change
UR - https://www.scopus.com/pages/publications/105045587898
U2 - 10.1016/j.carbon.2026.121896
DO - 10.1016/j.carbon.2026.121896
M3 - 文章
AN - SCOPUS:105045587898
SN - 0008-6223
VL - 260
JO - Carbon
JF - Carbon
M1 - 121896
ER -