Thomas et al., 2020 - Google Patents
Growth of homogeneous luminescent silicon–terbium nanowires by one-step electrodeposition in ionic liquidsThomas et al., 2020
View HTML- Document ID
- 9899162884202749509
- Author
- Thomas S
- Mallet J
- Bahuleyan B
- Molinari M
- Publication year
- Publication venue
- Nanomaterials
External Links
Snippet
An electrodeposition method for the growth of homogeneous silicon–terbium nanowires (NWs) with green light emission is described. The method involves template-assisted electrochemical co-deposition of Si/Tb NWs with 90-nm diameter from an electrolyte bath …
- 239000002070 nanowire 0 title abstract description 111
Similar Documents
Publication | Publication Date | Title |
---|---|---|
Roy et al. | Measurement of quantum yields of monolayer TMDs using dye-dispersed PMMA thin films | |
Jung et al. | Enhancement of photoluminescence quantum yield and stability in CsPbBr3 perovskite quantum dots by trivalent doping | |
Wang et al. | Structure and photoluminescence properties of thermally synthesized V2O5 and Al-doped V2O5 nanostructures | |
Li et al. | Improved stability and photoluminescence yield of Mn2+-doped CH3NH3PbCl3 perovskite nanocrystals | |
Tien et al. | High-quality all-inorganic perovskite CsPbBr3 quantum dots emitter prepared by a simple purified method and applications of light-emitting diodes | |
Skurlov et al. | Improved one-and multiple-photon excited photoluminescence from cd2+-doped cspbbr3 perovskite ncs | |
Zhao et al. | Study of ZnS nanostructures based electrochemical and photoelectrochemical biosensors for uric acid detection | |
Zhang et al. | Cell imaging using two-photon excited CdS fluorescent quantum dots working within the biological window | |
Tummala et al. | Ambient pressure chemical vapor deposition of flat and vertically aligned MoS2 nanosheets | |
Stojadinović et al. | Ce3+/Eu2+ doped Al2O3 coatings formed by plasma electrolytic oxidation of aluminum: Photoluminescence enhancement by Ce3+→ Eu2+ energy transfer | |
Qaid et al. | Reducing amplified spontaneous emission threshold in CsPbBr3 quantum dot films by controlling TiO2 compact layer | |
Stehlik et al. | Silicon-vacancy centers in ultra-thin nanocrystalline diamond films | |
Chen et al. | Tuning NaYF4 nanoparticles through alkaline earth doping | |
Coriolano et al. | Improved photostability in fluorinated 2D perovskite single crystals | |
Yun et al. | Mixed-solvent polarity-assisted phase transition of cesium lead halide perovskite nanocrystals with improved stability at room temperature | |
Giurlani et al. | Electrodeposition of nanoparticles and continuous film of CdSe on n-Si (100) | |
Ašmontas et al. | Impact of cesium concentration on optoelectronic properties of metal halide perovskites | |
Chen et al. | Thermal stability of cspbbr3 perovskite quantum dots assembled with sba-15 | |
Boukhoubza et al. | Electrochemical deposition of ZnO nanowires on CVD-graphene/copper substrates | |
Thomas et al. | Growth of homogeneous luminescent silicon–terbium nanowires by one-step electrodeposition in ionic liquids | |
Witkiewicz-Lukaszek et al. | LPE growth of composite thermoluminescent detectors based on the Lu3− xGdxAl5O12: Ce single crystalline films and YAG: Ce crystals | |
Chan et al. | Hybrid Organic–Inorganic Perovskite Superstructures for Ultrapure Green Emissions | |
Huang et al. | Investigation of the Stability of Methylammonium Lead Iodide (MAPbI3) Film Doped with Lead Cesium Triiodide (CsPbI3) Quantum Dots under an Oxygen Plasma Atmosphere | |
Gowdru et al. | Accelerated Formation of 2D Ruddlesden—Popper Perovskite Thin Films by Lewis Bases for High Efficiency Solar Cell Applications | |
Buryi et al. | Effect of UV Irradiation on the Growth of ZnO: Er Nanorods and Their Intrinsic Defects |