Research Center of Graphic Communication, Printing and Packaging, Wuhan University, Wuhan 430079, China; School of Biomedical Engineering, Shanghai Jiao Tong University, Shanghai 200240, China.
College of Chemistry and Chemical Engineering, Anqing Normal University, Anqing 246133, China; Research Center of Graphic Communication, Printing and Packaging, Wuhan University, Wuhan 430079, China.
Int J Biol Macromol. 2024 Nov;279(Pt 2):135231. doi: 10.1016/j.ijbiomac.2024.135231. Epub 2024 Aug 30.
Endowing biodegradable plastics with easy recyclability can reduce competition with food resources and further enhance their environmental friendliness. In this work, 4-carboxyphenylboronic acid was grafted onto the side chains of hydroxyethyl cellulose and compounded with inexpensive cornstarch. Upon the introduction of tannic acid, stable and reversible borate ester bond rapidly formed, yielding composite biodegradable plastic films with outstanding mechanical properties and facile recyclability. The formation of a dynamic cross-linked network mitigates the aggregation of gelatinized starch molecules, enhancing the flexibility and durability of the crosslinked film. Testing revealed that while maintaining high tensile strength, the elongation at break of the crosslinked film increased by 952.86 %. The static water contact angle was improved from 32.74° to 78.82°, with a change of <5° within 1 min, demonstrating enhanced water resistance. Excellent antioxidant and thermal stability were also characterized, the crosslinked film can be easily dissolved by heating in water at pH = 6.5 and reshaped in water at pH = 7.2. After five times of regeneration, the tensile strength loss was as low as 5.68 %. This eco-friendly and efficient recycling process is promising during green chemistry.
赋予可生物降解塑料易于回收的特性可以减少与食物资源的竞争,进一步提高其环境友好性。在这项工作中,4-羧基苯硼酸被接枝到羟乙基纤维素的侧链上,并与廉价的玉米淀粉复合。在引入单宁酸后,稳定且可快速形成的硼酸酯键形成,得到具有优异力学性能和可轻松回收的复合可生物降解塑料薄膜。动态交联网络的形成减轻了糊化淀粉分子的聚集,提高了交联膜的柔韧性和耐久性。测试表明,在保持高拉伸强度的同时,交联膜的断裂伸长率增加了 952.86%。静态水接触角从 32.74°提高到 78.82°,在 1 分钟内变化小于 5°,表明耐水性增强。还具有出色的抗氧化和热稳定性,交联膜可以在 pH=6.5 的水中加热轻松溶解,并在 pH=7.2 的水中重新成型。经过五次再生,拉伸强度损失低至 5.68%。这种环保且高效的回收过程在绿色化学中具有广阔的应用前景。