His primary areas of investigation include Luminescence, Laser, Analytical chemistry, Infrared and Doping. The study incorporates disciplines such as Bismuth, Full width at half maximum, Photoluminescence and Optical amplifier in addition to Luminescence. His Full width at half maximum research incorporates elements of Excited state, Fluorescence and Mineralogy.
His work is dedicated to discovering how Laser, Photochemistry are connected with Nanoclusters, Soda-lime glass and Nanomaterials and other disciplines. The various areas that he examines in his Analytical chemistry study include Absorption, Ytterbium, Lanthanum and Germanate. His Doping research includes themes of Absorption and Fiber amplifier.
Danping Chen mainly focuses on Analytical chemistry, Doping, Luminescence, Laser and Optoelectronics. His work on Absorption spectroscopy as part of his general Analytical chemistry study is frequently connected to Crystal, thereby bridging the divide between different branches of science. His study explores the link between Doping and topics such as Sintering that cross with problems in Nanoporous.
His studies deal with areas such as Bismuth, Full width at half maximum, Infrared, Optical amplifier and Photoluminescence as well as Luminescence. The concepts of his Laser study are interwoven with issues in Porous glass and Refractive index. Optoelectronics and Fiber are frequently intertwined in his study.
His primary areas of investigation include Doping, Analytical chemistry, Optoelectronics, Luminescence and Laser. His Doping research incorporates themes from Quartz, Composite material, Core, Photodarkening and Refractive index. His Raman spectroscopy study, which is part of a larger body of work in Analytical chemistry, is frequently linked to Yield, bridging the gap between disciplines.
His work on Photonic-crystal fiber, Slope efficiency and Fiber laser as part of general Optoelectronics study is frequently linked to All-silica fiber and Hard-clad silica optical fiber, bridging the gap between disciplines. His Luminescence research incorporates themes from Intensity, Photoluminescence and Nanocrystalline material. His work on Silica fiber and Laser diode as part of general Laser research is often related to Constraint and Performance estimation, thus linking different fields of science.
The scientist’s investigation covers issues in Analytical chemistry, Doping, Luminescence, Optoelectronics and Photonic-crystal fiber. Danping Chen interconnects Germanium oxide and Infrared in the investigation of issues within Analytical chemistry. His studies deal with areas such as Lanthanum, Ceramic and NMR spectra database as well as Doping.
His Luminescence study frequently links to related topics such as Photoluminescence. Within one scientific family, Danping Chen focuses on topics pertaining to Optical fiber under Optoelectronics, and may sometimes address concerns connected to Pulse compression and Chirp. Danping Chen works mostly in the field of Photonic-crystal fiber, limiting it down to topics relating to Laser power scaling and, in certain cases, Single-mode optical fiber, Slope efficiency and Refractive index, as a part of the same area of interest.
This overview was generated by a machine learning system which analysed the scientist’s body of work. If you have any feedback, you can contact us here.
Near infrared broadband emission of bismuth-doped aluminophosphate glass
Xian-geng Meng;Jian-rong Qiu;Ming-ying Peng;Dan-ping Chen.
Optics Express (2005)
Bismuth- and aluminum-codoped germanium oxide glasses for super-broadband optical amplification
Mingying Peng;Jianrong Qiu;Danping Chen;Xiangeng Meng.
Optics Letters (2004)
Infrared broadband emission of bismuth-doped barium-aluminum-borate glasses.
Xian-geng Meng;Jian-rong Qiu;Ming-ying Peng;Dan-ping Chen.
Optics Express (2005)
Superbroadband 1310 nm emission from bismuth and tantalum codoped germanium oxide glasses
Mingying Peng;Jianrong Qiu;Danping Chen;Xiangeng Meng.
Optics Letters (2005)
Rapid prototyping of three-dimensional microfluidic mixers in glass by femtosecond laser direct writing.
Yang Liao;Jiangxin Song;En Li;Yong Luo.
Lab on a Chip (2012)
Broadband conversion of visible light to near-infrared emission by Ce3+, Yb3+-codoped yttrium aluminum garnet.
Xiaofeng Liu;Yu Teng;Yixi Zhuang;Junhua Xie.
Optics Letters (2009)
Investigations on bismuth and aluminum co-doped germanium oxide glasses for ultra-broadband optical amplification
Mingying Peng;Chen Wang;Danping Chen;Jianrong Qiu.
Journal of Non-crystalline Solids (2005)
Broadband infrared luminescence from Li2O-Al2O3-ZnO-SiO2 glasses doped with Bi2O3.
Mingying Peng;Jianrong Qiu;Danping Chen;Xiangeng Meng.
Optics Express (2005)
Direct laser writing of sub-50 nm nanofluidic channels buried in glass for three-dimensional micro-nanofluidic integration
Yang Liao;Ya Cheng;Changning Liu;Jiangxin Song.
Lab on a Chip (2013)
Three-dimensional microfluidic channel with arbitrary length and configuration fabricated inside glass by femtosecond laser direct writing.
Yang Liao;Yongfeng Ju;Long Zhang;Fei He.
Optics Letters (2010)
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