Hu Yi, Pu Junmei, Hu Yingzi, Zi You, Chen Hongyan, Wang Mengke, Huang Weichun
School of Chemistry and Chemical Engineering, Nantong University, Nantong 226019, China.
Engineering Training Center, Nantong University, Nantong 226019, China.
Nanomaterials (Basel). 2023 Aug 20;13(16):2381. doi: 10.3390/nano13162381.
Copper (Cu)-based materials are widely used in many fields from industry to life, including marine, medical apparatus and instruments, and microelectronic devices owing to their superior thermal, electrical, and mechanical properties. However, the interaction of copper with aggressive and fouling liquids under normal circumstances easily brings about severe bacterial accumulation, resulting in undesirable functionality degeneration and bacterial infections. In this contribution, we reported a novel copper-based sponge, polydimethylsiloxane (PDMS)@graphdiyne (GDY)@Cu, constructed by in situ synthesis of GDY on a commercial Cu sponge, followed by the modification of PDMS. The as-fabricated PDMS@GDY@Cu sponge not only possesses excellent self-cleaning activity against the pollution of daily drinks and dirt due to an improved static contact angle (~136°), but also display a remarkably enhanced anticorrosion performance, attributed to intimate coverage of chemically stable GDY and PDMS on the Cu sponge. Based on high photothermal effect of GDY, the PDMS@GDY@Cu sponge also displays significantly improved antibacterial activities under irradiation. In addition, due to excellent chemical stability of PDMS and GDY, self-cleaning behavior and photothermal-assisted antibacterial performance are well maintained after long-term attack of bacteria. These results demonstrate that GDY-based functional coatings hold great promises in the protection of copper devices under harsh conditions.
铜基材料因其优异的热、电和机械性能,在从工业到生活的许多领域都有广泛应用,包括海洋、医疗器械和微电子设备等。然而,在正常情况下,铜与腐蚀性和污染性液体的相互作用容易导致严重的细菌积累,从而导致功能退化和细菌感染。在本研究中,我们报道了一种新型的铜基海绵材料,聚二甲基硅氧烷(PDMS)@石墨炔(GDY)@铜,它是通过在商用铜海绵上原位合成GDY,然后对PDMS进行改性而构建的。所制备的PDMS@GDY@铜海绵不仅由于静态接触角的改善(约136°)而对日常饮料和污垢污染具有优异的自清洁活性,而且由于化学稳定的GDY和PDMS在铜海绵上的紧密覆盖而表现出显著增强的防腐性能。基于GDY的高光热效应,PDMS@GDY@铜海绵在光照下也表现出显著提高的抗菌活性。此外,由于PDMS和GDY具有优异的化学稳定性,在长期细菌攻击后,自清洁行为和光热辅助抗菌性能仍能得到很好的保持。这些结果表明,基于GDY的功能涂层在恶劣条件下保护铜器件方面具有巨大的潜力。