Queen Mary University of London, School of Engineering and Materials Science, Mile End, Eng, 215, London E1 4NS, UK.
Micro/Nano Technology Research Centre, Harbin Institute of Technology, Yikuang Street 2, Harbin 150080, China.
Nanoscale. 2017 Jun 1;9(21):7063-7070. doi: 10.1039/c7nr01841j.
Long term encapsulation combined with spatiotemporal release for a precisely defined quantity of small hydrophilic molecules on demand remains a challenge in various fields ranging from medical drug delivery, controlled release of catalysts to industrial anti-corrosion systems. Free-standing individually sealed polylactic acid (PLA) nano- and microchamber arrays were produced by one-step dip-coating a PDMS stamp into PLA solution for 5 s followed by drying under ambient conditions. The wall thickness of these hydrophobic nano-microchambers is tunable from 150 nm to 7 μm by varying the PLA solution concentration. Furthermore, small hydrophilic molecules were successfully in situ precipitated within individual microchambers in the course of solvent evaporation after sonicating the PLA@PDMS stamp to remove air-bubbles and to load the active substance containing solvent. The cargo capacity of single chambers was determined to be in the range of several picograms, while it amounts to several micrograms per cm. Two different methods for sealing chambers were compared: microcontact printing versus dip-coating whereby microcontact printing onto a flat PLA sheet allows for entrapment of micro-air-bubbles enabling microchambers with both ultrasound responsiveness and reduced permeability. Cargo release triggered by external high intensity focused ultrasound (HIFU) stimuli is demonstrated by experiment and compared with numerical simulations.
长期封装与时空释放按需精确定义数量的小亲水分子在从医学药物输送、催化剂的控制释放到工业防腐系统等各个领域仍然是一个挑战。通过将 PDMS 印章浸入 PLA 溶液中 5 秒,然后在环境条件下干燥,一步法浸涂制备了独立密封的聚乳酸 (PLA) 纳米和微腔阵列。通过改变 PLA 溶液浓度,可以将这些疏水性纳米-微腔的壁厚从 150nm 调谐到 7μm。此外,在超声处理 PLA@PDMS 印章以去除气泡并装载含有活性物质的溶剂后,在溶剂蒸发过程中小的亲水分子成功地原位沉淀在各个微腔中。单个腔室的载物量被确定为几个皮克的范围,而每平方厘米则达到几个微克。比较了两种不同的腔室密封方法:微接触印刷与浸涂,其中微接触印刷到平整的 PLA 片上可以捕获微气泡,从而使微腔具有超声响应性和降低的渗透性。通过实验和数值模拟比较,证明了外部高强度聚焦超声 (HIFU) 刺激触发的货物释放。