InterNano Nanomanufacturing Repository
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1523 research outputs found
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Immunomodulatory Effects of Coated Gold Nanoparticles in LPS-Stimulated In Vitro and In Vivo Murine Model Systems
Reversible Electrochemically Triggered Delamination Blistering of Hydrogel Films on Micropatterned Electrodes
Direct imprint patterning of 2-D and 3-D nanoparticle/polymer hybrid and crystalline metal oxide structures for printed optical, electronic, and energy devices
Colorimetric Detection of Escherichia coli Based on the Enzyme-Induced Metallization of Gold Nanorods
Underwater Superoleophobic Surfaces Prepared from Polymer Zwitterion/Dopamine Composite Coatings
Directed Assembly of Quantum Dots Using Brush Block Copolymers for Well-Ordered Nonlinear Optical Nanocomposites
Rapid screening of waterborne pathogens using phage-mediated separation coupled with real-time PCR detection
Regulation of Macrophage Recognition through the Interplay of Nanoparticle Surface Functionality and Protein Corona
Helicity-Resolved Raman Scattering of MoS2, MoSe2, WS2, and WSe2 Atomic Layers
The two-fold valley degeneracy in two-dimensional (2D) semiconducting transition metal dichalcogenides (TMDCs) (Mo,W)(S,Se)(2) is suitable for ``valleytronics'', the storage and manipulation of information utilizing the valley degree of freedom. The conservation of luminescent photon helicity in these 2D crystal monolayers has been widely regarded as a benchmark indicator for charge carrier valley polarization. Here we perform helicity-resolved Raman scattering of the TMDC atomic layers. In drastic contrast to luminescence, the dominant first-order zone-center Raman bands, including the low energy breathing and shear modes as well as the higher energy optical phonons, are found to either maintain or completely switch the helicity of incident photons. In addition to providing a useful tool for characterization of TMDC atomic layers, these experimental observations shed new light on the connection between photon helicity and valley polarization