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dc.contributor.authorRighini, Nicoletta*
dc.contributor.authorRighini, Giancarlo*
dc.date.accessioned2021-02-11T14:38:35Z
dc.date.available2021-02-11T14:38:35Z
dc.date.issued2019*
dc.date.submitted2019-03-21 15:50:41*
dc.identifier32591*
dc.identifier.urihttps://directory.doabooks.org/handle/20.500.12854/48645
dc.description.abstractMicrotechnology has changed our world since the last century, when silicon microelectronics revolutionized sensor, control and communication areas, with applications extending from domotics to automotive, and from security to biomedicine. The present century, however, is also seeing an accelerating pace of innovation in glassy materials; as an example, glass-ceramics, which successfully combine the properties of an amorphous matrix with those of micro- or nano-crystals, offer a very high flexibility of design to chemists, physicists and engineers, who can conceive and implement advanced microdevices. In a very similar way, the synthesis of glassy polymers in a very wide range of chemical structures offers unprecedented potential of applications. The contemporary availability of microfabrication technologies, such as direct laser writing or 3D printing, which add to the most common processes (deposition, lithography and etching), facilitates the development of novel or advanced microdevices based on glassy materials. Biochemical and biomedical sensors, especially with the lab-on-a-chip target, are one of the most evident proofs of the success of this material platform. Other applications have also emerged in environment, food, and chemical industries. The present Special Issue of Micromachines aims at reviewing the current state-of-the-art and presenting perspectives of further development. Contributions related to the technologies, glassy materials, design and fabrication processes, characterization, and, eventually, applications are welcome.*
dc.languageEnglish*
dc.subjectTK1-9971*
dc.subjectTA1-2040*
dc.subjectT1-995*
dc.subject.classificationthema EDItEUR::K Economics, Finance, Business and Management::KN Industry and industrial studies::KNB Energy industries and utilitiesen_US
dc.subject.otherenhanced boiling heat transfer*
dc.subject.othermicrofluidic devices*
dc.subject.otherthermal insulation*
dc.subject.otherfibers*
dc.subject.otherlab-on-a-chip*
dc.subject.otherprecision glass molding*
dc.subject.otherdevice simulations*
dc.subject.otherspray pyrolysis technique*
dc.subject.otherdielectric materials*
dc.subject.otherdetection of small molecules*
dc.subject.otherroughness*
dc.subject.otherdirect metal forming*
dc.subject.othermicro-grinding*
dc.subject.otherMEMS*
dc.subject.otherchalcogenide glass*
dc.subject.otherwhispering gallery mode*
dc.subject.otherdown-shifting*
dc.subject.otherglass*
dc.subject.otheroptofluidic microbubble resonator*
dc.subject.otherluminescent materials*
dc.subject.otherfilling ratio*
dc.subject.other2D colloidal crystal*
dc.subject.otherwaveguides*
dc.subject.othermicro-crack propagation*
dc.subject.otherfluid displacement*
dc.subject.otherbiosensors*
dc.subject.otherfreeform optics*
dc.subject.othermicrostructured optical fibers*
dc.subject.otherlaser micromachining*
dc.subject.otherpolymeric microfluidic flow cytometry*
dc.subject.otherluminescence*
dc.subject.otherfrequency conversion*
dc.subject.otherlight*
dc.subject.othermicro/nano patterning*
dc.subject.otherresonator*
dc.subject.otherfiber coupling*
dc.subject.otherdistributed sensing*
dc.subject.othersevering force*
dc.subject.othermicrosphere*
dc.subject.otheralkali cells*
dc.subject.othermicrofabrication*
dc.subject.otherhybrid materials*
dc.subject.otherenclosed microstructures*
dc.subject.otherinfrared optics*
dc.subject.otherglassy carbon micromold*
dc.subject.otherAg nanoaggregates*
dc.subject.othermicrofluidics*
dc.subject.otherchemical/biological sensing*
dc.subject.otherporous media*
dc.subject.otheratomic spectroscopy*
dc.subject.otherquartz glass*
dc.subject.othersolar energy*
dc.subject.otherdiffusion*
dc.subject.othersoft colloidal lithography*
dc.subject.othergroove*
dc.subject.othercompound glass*
dc.subject.othermetallic microstructure*
dc.subject.otherwhispering gallery modes*
dc.subject.othersol-gel*
dc.subject.othercommunications*
dc.subject.otherfemtosecond laser*
dc.subject.otheroptofluidics*
dc.subject.othereuropium*
dc.subject.otheraspherical lens*
dc.subject.otherlong period grating*
dc.subject.otheroptical cells*
dc.subject.otherpolymers*
dc.subject.otherlasing*
dc.subject.otherphotovoltaics*
dc.subject.othermicroresonator*
dc.subject.othersensing*
dc.subject.othermicrospheres*
dc.subject.otherlight localization*
dc.subject.otherYb<sup>3+</sup> ions*
dc.subject.otherlaser materials processing*
dc.subject.otherphotonic microdevices*
dc.subject.otherMEMS vapor cells*
dc.subject.othermicrotechnology*
dc.subject.otherultrafast laser micromachining*
dc.subject.otherphoton*
dc.subject.othersingle-cell protein quantification*
dc.subject.otherstrain microsensor*
dc.subject.otherlabel-free sensor*
dc.subject.othermicrodevices*
dc.subject.otherultrafast laser welding*
dc.subject.othernuclear fusion*
dc.subject.othervectorial strain gauge*
dc.subject.othersingle-cell analysis*
dc.subject.otherglass molding process*
dc.titleGlassy Materials Based Microdevices*
dc.typebook
oapen.identifier.doi10.3390/books978-3-03897-619-6*
oapen.relation.isPublishedBy46cabcaa-dd94-4bfe-87b4-55023c1b36d0*
oapen.relation.isbn9783038976189*
oapen.pages284*
oapen.edition1st*


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