释义 |
bioelectronics in American English (ˌbaɪoʊˌilɛkˈtrɑnɪks; ˌbaɪoʊˌɛlɛkˈtrɑnɪks) noun a branch of electronics that deals with electronic devices, implants, etc. used in medicine and biological research Derived forms bioelectronic (ˌbioˌelecˈtronic) adjective bioelectronically (ˌbioeˌlecˈtronically) adverb bioelectronics in American English (ˌbaiouɪlekˈtrɑnɪks, -ˌilek-) noun (used with a sing v)1. Biology the study of electron transfer reactions as they occur in biological systems 2. Medicine the application of electronic devices to living organisms for clinical testing, diagnosis, and therapy Derived forms bioelectronic adjective Word origin [bio- + electronics]bio- is a combining form meaning “life” occurring in loanwords from Greek (biography). On this model, bio- is used in the formation of compound words (bioluminescence). Other words that use the affix bio- include: bioconversion, biogeochemistry, biosynthesis, biotechnology, biotelemetryExamples of 'bioelectronics' in a sentencebioelectronics Organic bioelectronics have great potential to become a primary platform in future bioelectronics.A biocompatible and functional interface can improve the sensitivity of bioelectronics.The convergence of these carbon-based materials and bioelectronics ensures scalability and cooperativity in various fields.As such, organic bioelectronics might contribute to efficient healthcare and reduced hospitalization times for patients.Transient electronics are becoming a hot topic due to the rapid development of bioelectronics, self-destructive devices and environmental sensors.The report clearly reveals a cost-effective simple system possessing enormous potentiality for biosensors, bioenergy and bioelectronics applications.Organic materials that support both electronic and ionic transport hold promise for applications in bioelectronics and energy storage.In this review, we provide an insight into the synthesis and applications of innovative poly(ethylenedioxythiophene)-type materials for bioelectronics.Soft, contoured geometries and time-dynamic deformation of the targeted tissues require high flexibility and stretchability of the integrated bioelectronics.Organic bioelectronics forms the basis of conductive polymer tools with great potential for application in biomedical science and medicine. |