首页> 外文会议>2014 IEEE 9th Ibero American Congress on Sensors >Integrated system to produce nano/microparticles for drug delivery using LTCC microfluidics devices
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Integrated system to produce nano/microparticles for drug delivery using LTCC microfluidics devices

机译:使用LTCC微流体装置生产用于药物输送的纳米/微粒的集成系统

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Encapsulated nano/micro particles are highly used for biological, chemical, pharmaceutical and medical applications. The polymeric particles show potential capacity to release drugs and compatibility in biological environments. The emulsion/diffusion process is applied to produce these particles, and technologies based on microfluidic provide miniaturization of such process allowing particles with physical and chemical controlled characteristics. Nevertheless, the integrated system of technological devices like sensors, microactuators and controllers is crucial to improve the performance and efficiency of particles production with automatic cycles. The proposal of this work is to develop the integrated system to produce nano/microparticles for drug encapsulation, using microfluidics devices with control and automatic actions in continuous scale. The system is developed through devices integration, system characterization and control loops, using sensors, pumps, microfluidics devices, communication drivers, data acquisition, and control programs. The result of this work is the integrated system to produce particles of size 499-1500 nm with polydispersity index of 0.3 to 0.5 with potential to be used as drug delivery systems. The experimental results were validated by size measurement and polydispersity distribution with optical microscopy, scanning electron microscopy and dynamic light scattering.
机译:封装的纳米/微粒被高度用于生物,化学,制药和医学应用。聚合物颗粒在生物环境中显示出释放药物的潜在能力和相容性。应用乳液/扩散过程来生产这些颗粒,基于微流体的技术使这种过程小型化,从而使颗粒具有物理和化学控制的特性。尽管如此,诸如传感器,微致动器和控制器之类的技术设备的集成系统对于通过自动循环提高颗粒生产的性能和效率至关重要。这项工作的建议是,使用具有连续规模的控制和自动动作的微流控设备,开发出集成系统来生产用于胶囊封装的纳米/微粒。该系统是通过使用传感器,泵,微流控设备,通信驱动程序,数据采集和控制程序的设备集成,系统表征和控制回路开发的。这项工作的结果是产生了499-1500 nm粒径且多分散指数为0.3到0.5的颗粒的集成系统,具有用作药物输送系统的潜力。通过光学显微镜,扫描电子显微镜和动态光散射的尺寸测量和多分散性分布验证了实验结果。

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