ZnS: Mn quantum dots (QDs) with the average grain size from 4.2 to 7.2 nm were synthesized by a hydrothermal method. All samples were cubic zinc blende structure (β-ZnS) measured using X-ray diffraction (XRD). And the main diffraction peaks of ZnS: Mn shifted slightly towards higher angle in comparison with the intrinsic ZnS because of the substitution of Mn2+ for Zn2+. Due to the small grain size (4-7 nm) effect, the poor dispersion and serious reunion phenomenon for the samples were observed from transmission electron microscopy (TEM). ZnS: Mn QDs had four peaks centered at 466, 495, 522, and 554 nm, respectively, in the photoluminescence (PL) spectra, in which the band at 554 nm absent in the intrinsic ZnS: Mn is attributed to the doping...
ZnS:Mn nanoparticles (C<inf>Mn</inf> = 15 mol%) were synthesized from thioglycolic acid ...
Mn2+ doped (0-50.0 molar %) ZnS d-dots have been synthesized in water medium by using an environment...
Doping of semiconductor quantum dots (QDs) by transition metals (such as Mn, Cu, Ni, etc.) is a grea...
Water-soluble Mn2+-doped ZnSe quantum dots (QDs) were synthesized using a hydrothermal method. The c...
The field of photovoltaics has evolved over the past few decades and introduction of quantum dots (Q...
ZnS quantum dots (QDs) have limited application potential in QD-sensitized solar cells because of th...
Mn-doped ZnS nanocrystals of about 3 nm diameter were synthesized by a wet chemical method. X-ray di...
Undoped and Mn-doped ZnS nanoclusters have been synthesized by a hydrothermal approach. Various samp...
The synthesis methods (one-or two-pot) of stable Mn2+ doped ZnxCd1-xS and ZnxCd1-xS/ZnS quantum dots...
Mn2+-doped ZnS semiconductor quantum dots reveal remarkably intense photoluminescence with the 4T1(4...
Mn-doped ZnS nanocrystals were synthesized via a facile hydrothermal method with the assistant of pr...
The advantage of hydrothermal synthesis of semiconductor quantum dots (QDs) over the control of part...
ZnS:Mn luminescent nanomaterials were first prepared in an inverse microemulsion at room temperature...
Using a solution-based chemical method, we have prepared ZnS nanocrystals doped with high concentrat...
Abstract Mn-doped ZnS nanocrystals based on low dopant concentrations (0–2%) and coated with a...
ZnS:Mn nanoparticles (C<inf>Mn</inf> = 15 mol%) were synthesized from thioglycolic acid ...
Mn2+ doped (0-50.0 molar %) ZnS d-dots have been synthesized in water medium by using an environment...
Doping of semiconductor quantum dots (QDs) by transition metals (such as Mn, Cu, Ni, etc.) is a grea...
Water-soluble Mn2+-doped ZnSe quantum dots (QDs) were synthesized using a hydrothermal method. The c...
The field of photovoltaics has evolved over the past few decades and introduction of quantum dots (Q...
ZnS quantum dots (QDs) have limited application potential in QD-sensitized solar cells because of th...
Mn-doped ZnS nanocrystals of about 3 nm diameter were synthesized by a wet chemical method. X-ray di...
Undoped and Mn-doped ZnS nanoclusters have been synthesized by a hydrothermal approach. Various samp...
The synthesis methods (one-or two-pot) of stable Mn2+ doped ZnxCd1-xS and ZnxCd1-xS/ZnS quantum dots...
Mn2+-doped ZnS semiconductor quantum dots reveal remarkably intense photoluminescence with the 4T1(4...
Mn-doped ZnS nanocrystals were synthesized via a facile hydrothermal method with the assistant of pr...
The advantage of hydrothermal synthesis of semiconductor quantum dots (QDs) over the control of part...
ZnS:Mn luminescent nanomaterials were first prepared in an inverse microemulsion at room temperature...
Using a solution-based chemical method, we have prepared ZnS nanocrystals doped with high concentrat...
Abstract Mn-doped ZnS nanocrystals based on low dopant concentrations (0–2%) and coated with a...
ZnS:Mn nanoparticles (C<inf>Mn</inf> = 15 mol%) were synthesized from thioglycolic acid ...
Mn2+ doped (0-50.0 molar %) ZnS d-dots have been synthesized in water medium by using an environment...
Doping of semiconductor quantum dots (QDs) by transition metals (such as Mn, Cu, Ni, etc.) is a grea...