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Large emission blueshift is significantly suppressed and narrow linewidth photoluminescence emission is achieved.
Through control of the location of the recombination zone and energy transfer, a stable white light emission is achieved.
Upon 358-nm excitation of the Tm/Tb/Eu triple-doped glasses, white light emission is achieved and the corresponding correlated colour temperatures are also determined.
Intense red emission is achieved in silicon nanocrystals (SiNCs) grown by atom beam sputtering (ABS) followed by ion beam irradiation (IBI).
Efficient red emission is achieved using Ruthenium complexes doped blend of poly N-vinylcarbazole) and 2-tert-butypoly N-vinylcarbazole,4-oxandazole.
Enhanced white-light emission is achieved from the nanocables, revealing that the ZnO/HfO2 Eu nanocables are efficient white-light emission material.
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ICT emission, ICT/locally excited (LE) mixture emission and LE emission were achieved by changing the terminal group in triazole bridged conjugates.
Construction and installation of the hood has been performed and a 65% reduction in fume emission was achieved, thus significantly mitigating a long-standing emission problem.
Vertically well-aligned single crystal ZnO nanorod arrays were synthesized and enhanced field electron emission was achieved with hafnium nitride (HfNx) coating under proper sputtering condition.
In situ SEM investigation showed that below Eav = 3.2 3.9 V/μm, emission was achieved at the expense of originally existing free nanotube ends.
For the 90% CO2 capture efficiency with conventional MEA, a reduction of 76% in GHG emission was achieved for the entire compression configuration.
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