36 results on '"Liao, Lingwen"'
Search Results
2. Cover Picture: Atomically Precise Nanometer‐Sized Pt Catalysts with an Additional Photothermy Functionality
3. Cover Picture: Pd8 Nanocluster with Nonmetal‐to‐Metal‐ Ring Coordination and Promising Photothermal Conversion Efficiency (Angew. Chem. Int. Ed. 3/2024)
4. Synthesis of 2H/fcc‐Heterophase AuCu Nanostructures for Highly Efficient Electrochemical CO2 Reduction at Industrial Current Densities
5. Frontispiece: Sandwich‐Kernelled AgCu Nanoclusters with Golden Ratio Geometry and Promising Photothermal Efficiency
6. Frontispiz: Sandwich‐Kernelled AgCu Nanoclusters with Golden Ratio Geometry and Promising Photothermal Efficiency
7. Sandwich‐Kernelled AgCu Nanoclusters with Golden Ratio Geometry and Promising Photothermal Efficiency
8. Sandwich‐Kernelled AgCu Nanoclusters with Golden Ratio Geometry and Promising Photothermal Efficiency
9. 2D/0D hierarchical heterostructures prepared via facet‐selective epitaxial growth of triangular Rh nanoplates on 2H‐Pd nanoparticles
10. Confined Growth of Silver–Copper Janus Nanostructures with {100} Facets for Highly Selective Tandem Electrocatalytic Carbon Dioxide Reduction
11. Surface Molecular Functionalization of Unusual Phase Metal Nanomaterials for Highly Efficient Electrochemical Carbon Dioxide Reduction under Industry‐Relevant Current Density
12. Frontispiz: Traceless Removal of Two Kernel Atoms in a Gold Nanocluster and Its Impact on Photoluminescence
13. Frontispiece: Traceless Removal of Two Kernel Atoms in a Gold Nanocluster and Its Impact on Photoluminescence
14. Traceless Removal of Two Kernel Atoms in a Gold Nanocluster and Its Impact on Photoluminescence
15. Traceless Removal of Two Kernel Atoms in a Gold Nanocluster and Its Impact on Photoluminescence
16. Hard‐Sphere Random Close‐Packed Au47Cd2(TBBT)31Nanoclusters with a Faradaic Efficiency of Up to 96 % for Electrocatalytic CO2Reduction to CO
17. Hard‐Sphere Random Close‐Packed Au47Cd2(TBBT)31 Nanoclusters with a Faradaic Efficiency of Up to 96 % for Electrocatalytic CO2 Reduction to CO
18. An Unprecedented Kernel Growth Mode and Layer‐Number‐Odevity‐Dependent Properties in Gold Nanoclusters
19. An Unprecedented Kernel Growth Mode and Layer‐Number‐Odevity‐Dependent Properties in Gold Nanoclusters
20. Alternating Array Stacking of Ag26Au and Ag24Au Nanoclusters
21. Alternating Array Stacking of Ag26Au and Ag24Au Nanoclusters
22. Inside Cover: Fcc versus Non‐fcc Structural Isomerism of Gold Nanoparticles with Kernel Atom Packing Dependent Photoluminescence (Angew. Chem. Int. Ed. 14/2019)
23. Innentitelbild: Fcc versus Non‐fcc Structural Isomerism of Gold Nanoparticles with Kernel Atom Packing Dependent Photoluminescence (Angew. Chem. 14/2019)
24. Fcc versus Non‐fcc Structural Isomerism of Gold Nanoparticles with Kernel Atom Packing Dependent Photoluminescence
25. Fcc versus Non‐fcc Structural Isomerism of Gold Nanoparticles with Kernel Atom Packing Dependent Photoluminescence
26. Kernel Homology in Gold Nanoclusters
27. Kernel Homology in Gold Nanoclusters
28. A Silver Nanocluster Containing Interstitial Sulfur and Unprecedented Chemical Bonds
29. A Silver Nanocluster Containing Interstitial Sulfur and Unprecedented Chemical Bonds
30. Cover Feature: Gold‐Doping of Double‐Crown Pd Nanoclusters (Chem. Eur. J. 72/2017)
31. Gold-Doping of Double-Crown Pd Nanoclusters
32. Quasi‐Dual‐Packed‐Kerneled Au 49 (2,4‐DMBT) 27 Nanoclusters and the Influence of Kernel Packing on the Electrochemical Gap
33. Quasi‐Dual‐Packed‐Kerneled Au 49 (2,4‐DMBT) 27 Nanoclusters and the Influence of Kernel Packing on the Electrochemical Gap
34. Fluorescent Gold Nanoclusters with Interlocked Staples and a Fully Thiolate‐Bound Kernel
35. Fluorescent Gold Nanoclusters with Interlocked Staples and a Fully Thiolate-Bound Kernel
36. Size-Dependent Cytotoxicity of Thiolated Silver Nanoparticles Rapidly Probed by using Differential Pulse Voltammetry
Catalog
Books, media, physical & digital resources
Discovery Service for Jio Institute Digital Library
For full access to our library's resources, please sign in.