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Phone
18017373226
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Address
Room 703, South Building, Jinmao Garden, 2515 Pudong Avenue, Pudong New Area, Shanghai
Shanghai Pulangyuan Precision Electromechanical Co., Ltd
18017373226
Room 703, South Building, Jinmao Garden, 2515 Pudong Avenue, Pudong New Area, Shanghai
BioMEMs (biological microelectromechanical systems)
BioMEMs utilize microchips for biological and medical applications. Due to its simple shape, in advanced biotechnology fields, nano level laboratories capable of automated measurement can be quickly and economically built using techniques such as microfabrication and microfabrication. In more complex situations, BioMEMS devices provide a broad channel for artificial organs, unique therapies, and new ways to observe cell communication. Biological MEMS can be divided into two categories, namely biomedical MEMS and biotechnology MEMS.
Biomedical MEMS is mainly applied in in vivo and human anatomy, including biological telemetry, * * delivery, biosensors, and other human sensors. Biotechnology MEMS is used for in vitro cultivation of biological samples from the human body, including gene sequencing, functional genomics, development * *, * * genomics, diagnosis, and pathogen detection/identification.
There is currently a significant amount of work on BioMEMS in utilizing microfabrication technology for * * transmission. Two major categories are envisioned: micro nano films and particles. Nanofilms use photolithography, thin film deposition, and selective etching techniques to manufacture films composed of silicon with highly uniform nanoscale pores. Particles, unlike traditional transmission systems such as polymer microspheres, may be ultra-thin flat pieces with a thickness and diameter of about 1 micron.
With the rapid development of these advanced technologies, there are also some interesting developments such as microneedles, sensors, and micro pumps, all of which are used for fast and targeted transmission. With the continuous expansion of the biomedical field, there has been a significant increase in demand for nanometric technology, which is exactly what Taylor Hobson excels at.