Zhang Xingzhong, Wang Yixiang, Luo Xiaogang, Lu Ang, Li Yan, Li Bin, Liu Shilin
Beijing Advanced Innovation Center for Food Nutrition and Human Health, Beijing Technology & Business University, Beijing, 100048, China.
College of Food Science & Technology, Huazhong Agricultural University, Wuhan, Hubei 430070, China.
ACS Appl Bio Mater. 2019 Jan 22;2(1):480-487. doi: 10.1021/acsabm.8b00674. Epub 2018 Dec 12.
The increased quantities of fat in plants could allow the cells to inhibit the growth of ice and thus prevent the damages of their tissue structure in winter. In view of the structural buildup of freezing tolerance mechanism, here we presented a facile way of employing O/W Pickering emulsion as a template to produce the freestanding organo-hydrogels with increased mechanical stability and energy storage capacity. The oil droplets stabilized by cellulose nanofibrils were dispersed in the alginate polymer network that cross-linked with Ca, which resulted in homogeneous and closely packed microstructures. The prepared organo-hydrogels could maintain original gel structure under frozen conditions and had extraordinary mechanical performance. It could endure compressive stress up to 35 KPa (at 50% strain) and the elastic modulus was around 72 KPa, while the solid content of polysaccharides was only about 0.75%. By using our comprehensive strategy, organo-hydrogels with higher volumes of oil phase exhibited an enhanced cold storage capacity. For alginate hydrogel, it took 8 min when the temperature rose from 0 to 5 °C, while for the organo-hydrogel with oil volume of 30%, it took about 24 min. After 34 min, the inner temperature of alginate hydrogel was close to 25 °C, and about 70 min were needed for the temperature of organo-hydrogel to reach 25 °C. This kind of gel materials with complementary heteronetworks not only will have potential applications in cold chain logistics, but also can be applied in other fields with unusual functions.
植物中脂肪含量的增加可使细胞抑制冰的生长,从而防止其组织结构在冬季受到损害。鉴于抗冻耐受性机制的结构形成,在此我们提出了一种简便的方法,即采用水包油型Pickering乳液作为模板来制备具有更高机械稳定性和能量储存能力的独立式有机水凝胶。由纤维素纳米纤维稳定的油滴分散在与钙交联的藻酸盐聚合物网络中,形成了均匀且紧密堆积的微观结构。所制备的有机水凝胶在冷冻条件下可保持原始凝胶结构,并具有非凡的机械性能。它能承受高达35 KPa的压缩应力(在50%应变下),弹性模量约为72 KPa,而多糖的固体含量仅约为0.75%。通过我们的综合策略,具有更高油相体积的有机水凝胶表现出增强的蓄冷能力。对于藻酸盐水凝胶,温度从0℃升至5℃需要8分钟,而对于油体积为30%的有机水凝胶,则需要约24分钟。34分钟后,藻酸盐水凝胶的内部温度接近25℃,而有机水凝胶的温度达到25℃大约需要70分钟。这种具有互补异质网络的凝胶材料不仅在冷链物流中具有潜在应用,还可应用于其他具有特殊功能的领域。