Cho Yeong Sik, Lee Sung Ho, Seo Hye Min, Shin Kyounghee, Kang Min Ho, Lee Minyoung, Park Jungwon, Kim Jin Woong
School of Chemical Engineering, Sungkyunkwan University, Suwon 16419, Republic of Korea.
Sunjin Beauty Science Co., Ansan 15612, Republic of Korea.
Langmuir. 2021 Apr 6;37(13):3828-3835. doi: 10.1021/acs.langmuir.0c03082. Epub 2021 Mar 29.
In this study, we present a water-in-silicone oil (W/S) Pickering emulsion system stabilized via in situ interfacial coacervation of attractive hectorite nanoplatelets (AHNPs) and bacterial cellulose nanofibrils (BCNFs). A bilayered coacervate is generated at the W/S interface by employing the controlled electrostatic interaction between the positively charged AHNPs and the negatively charged BCNFs. The W/S interface with the bilayered coacervate shows a significant increase in the interfacial modulus by 2 orders of magnitude than that with the AHNPs only. In addition, we observe that water droplets are interconnected by the BCNF bridging across the continuous phase of silicon, which is attributed to the diffusive transport phenomenon. This droplet interconnection results in the effective prevention of drop coalescence, which is confirmed via emulsion sedimentation kinetics. These results indicate that our bilayered coacervation technology has the potential of developing a promising Pickering emulsion platform that can be used in the pharmaceutical and cosmetic industries.
在本研究中,我们展示了一种硅油包水(W/S)皮克林乳液体系,该体系通过具有吸引力的锂蒙脱石纳米片(AHNP)和细菌纤维素纳米纤维(BCNF)的原位界面凝聚作用得以稳定。通过利用带正电的AHNP和带负电的BCNF之间可控的静电相互作用,在W/S界面处生成了双层凝聚层。与仅含有AHNP的情况相比,具有双层凝聚层的W/S界面的界面模量显著增加了2个数量级。此外,我们观察到水滴通过横跨连续硅相的BCNF桥接而相互连接,这归因于扩散传输现象。这种液滴互连有效地防止了液滴聚结,这通过乳液沉降动力学得到了证实。这些结果表明,我们的双层凝聚技术有潜力开发出一个有前景的皮克林乳液平台,可用于制药和化妆品行业。