Luo Shilu, Li Qi, Xue Yajun, Zhou Bing, Feng Yuezhan, Liu Chuntai
Key Laboratory of Materials Processing and Mold Ministry of Education, National Engineering Research Center for Advanced Polymer Processing Technology, Zhengzhou University, Zhengzhou 450002, China.
Union Hospital, Tongji Medical College, Huazhong University of Science and Technology, 1277 JieFang Avenue, Wuhan 430022, China.
J Colloid Interface Sci. 2023 Dec 15;652(Pt B):1645-1652. doi: 10.1016/j.jcis.2023.08.177. Epub 2023 Aug 29.
Ultrathin MXene composite films, with their flexibility, metal-level conductivity, and multifunction compatibility, are an ideal choice for electromagnetic interference (EMI) shielding materials in future developments. Nonetheless, the dilemma between electrical conductivity and robustness in these composite films remains a challenge. Herein, an ammonium polyphosphate (APP) assisted interfacial multiple cross-linking strategy, achieved via simple solution blending and filtration, was employed to reinforce and toughen the "brick-mortar" layered MXene/bacterial cellulose (MBCA) films without compromising their conductivity and EMI shielding ability. The introduction of a small amount of APP leads to multiple interfacial interactions between MXene and bacterial cellulose, resulting in significant enhancements in mechanical strength (360.8 MPa), Young's modulus (2.8 GPa), fracture strain (17.3%), and toughness (34.1 MJ/m). Concurrently, the MBCA film displayed satisfactory conductivity values of 306.7 S/cm and an EMI SE value of 41 dB upon optimizing the MXene content. Additionally, the MBCA film demonstrated a consistent, rapid-response photothermal conversion capability, achieving a photothermal conversion temperature of 97 °C under a light intensity of 200 mW/m. Consequently, this tough and multifunctional EMI shielding film holds substantial promise for protecting electronic equipment.
超薄MXene复合薄膜具有柔韧性、金属级导电性和多功能兼容性,是未来电磁干扰(EMI)屏蔽材料的理想选择。尽管如此,这些复合薄膜在导电性和坚固性之间的两难困境仍然是一个挑战。在此,通过简单的溶液共混和过滤实现了一种聚磷酸铵(APP)辅助的界面多重交联策略,用于增强和增韧“砖-砂浆”层状MXene/细菌纤维素(MBCA)薄膜,同时不损害其导电性和EMI屏蔽能力。引入少量APP会导致MXene与细菌纤维素之间产生多重界面相互作用,从而使机械强度(360.8MPa)、杨氏模量(2.8GPa)、断裂应变(17.3%)和韧性(34.1MJ/m)得到显著提高。同时,在优化MXene含量后,MBCA薄膜显示出令人满意的306.7S/cm的电导率值和41dB的EMI屏蔽效能值。此外,MBCA薄膜表现出一致的快速响应光热转换能力,在200mW/m的光强下实现了97°C的光热转换温度。因此,这种坚韧且多功能的EMI屏蔽薄膜在保护电子设备方面具有巨大潜力。