Se-doped NH2-functionalized graphene quantum dot for single-photon emission at free-space quantum communication wavelength
暂无分享,去创建一个
Shahram Mohammadnejad | Hossein Arab | Parizad MohammadNejad | H. Arab | S. Mohammadnejad | Parizad MohammadNejad | Parizad Mohammadnejad
[1] D. Englund,et al. Tunable and high-purity room temperature single-photon emission from atomic defects in hexagonal boron nitride , 2016, Nature Communications.
[2] Z. Shariatinia,et al. Computational studies on the doped graphene quantum dots as potential carriers in drug delivery systems for isoniazid drug , 2018, Structural Chemistry.
[3] S. N. Molotkov,et al. Faint laser pulses versus a single-photon source in free space quantum cryptography , 2016 .
[4] Hossein Arab,et al. Recent advances in nanowire quantum dot (NWQD) single-photon emitters , 2019, Quantum Information Processing.
[5] W. Choi,et al. One-pot synthesis of highly fluorescent amino-functionalized graphene quantum dots for effective detection of copper ions , 2018, Current Applied Physics.
[6] N. Handy,et al. A new hybrid exchange–correlation functional using the Coulomb-attenuating method (CAM-B3LYP) , 2004 .
[7] Zhi-Ming Zhang,et al. Improvement of the safe transmission distance via optimization of the photon number distribution for the faint optical pulse in practical quantum key distribution systems , 2019, The European Physical Journal D.
[8] P. Senellart,et al. High-performance semiconductor quantum-dot single-photon sources. , 2017, Nature nanotechnology.
[9] M. Hammar,et al. A stable wavelength-tunable triggered source of single photons and cascaded photon pairs at the telecom C-band , 2018, 1801.01518.
[10] Dan Yang,et al. Amphipathic carbon dots with solvent-dependent optical properties and sensing application , 2019, Optical materials (Amsterdam).
[11] M. Cecchini,et al. Ultrastructural Characterization of the Lower Motor System in a Mouse Model of Krabbe Disease , 2016, Scientific Reports.
[12] Teresa J. Feo,et al. Structural absorption by barbule microstructures of super black bird of paradise feathers , 2018, Nature Communications.
[13] Shuo Sun,et al. Quantum dot single-photon sources with ultra-low multi-photon probability , 2018, npj Quantum Information.
[14] Liyan Yu,et al. Theoretical insights into tunable optical and electronic properties of graphene quantum dots through phosphorization , 2019 .
[15] M. Herrera-Trejo,et al. DFT study of small gas molecules adsorbed on undoped and N-, Si-, B-, and Al-doped graphene quantum dots , 2019, Theoretical Chemistry Accounts.
[16] R. Boyd,et al. Dye-doped cholesteric-liquid-crystal room-temperature single-photon source , 2004 .
[17] Electronic Structure of Edge-Modified Graphene Quantum Dots Interacting with Polyaniline: Vibrational and Optical Properties , 2017 .
[18] Jing Sun,et al. Selenium Doped Graphene Quantum Dots as an Ultrasensitive Redox Fluorescent Switch , 2015 .
[19] Zachary T. Rosenkrans,et al. Selenium‐Doped Carbon Quantum Dots Act as Broad‐Spectrum Antioxidants for Acute Kidney Injury Management , 2020, Advanced science.
[20] R. Faccio,et al. Curvature and vacancies in graphene quantum dots , 2018, Applied Surface Science.
[21] H. Arab,et al. Single- and two-qubit universal quantum gates in photonic Ti:LiNbO3 circuits , 2019, Optik.
[22] Shichao Wang,et al. Amino‐Functionalized Graphene Quantum Dots as Cathode Interlayer for Efficient Organic Solar Cells: Quantum Dot Size on Interfacial Modification Ability and Photovoltaic Performance , 2018, Advanced Materials Interfaces.
[23] L. Bissell,et al. Nanophotonic Advances for Room-Temperature Single-Photon Sources , 2019, Springer Series in Optical Sciences.
[24] Li Xueming,et al. Multicolour light emission from chlorine-doped graphene quantum dots , 2013 .
[25] O. Benson,et al. Ultrabright and efficient single-photon generation based on nitrogen-vacancy centres in nanodiamonds on a solid immersion lens , 2010, 1011.1822.
[26] S. Saavedra,et al. Exploring the Emissive States of Heteroatom-Doped Graphene Quantum Dots , 2018 .
[27] A. Naumov,et al. Nitrogen-doped graphene quantum dots: Optical properties modification and photovoltaic applications , 2019, Nano Research.
[28] Huaping Xu,et al. Selenium-Doped Carbon Quantum Dots for Free-Radical Scavenging. , 2017, Angewandte Chemie.
[29] Shijie Qu,et al. Amino-functionalized graphene quantum dots prepared using high-softening point asphalt and their application in Fe3+ detection , 2019, Applied Surface Science.
[30] Hyunseok Jeong,et al. Quantum teleportation between a single-rail single-photon qubit and a coherent-state qubit using hybrid entanglement under decoherence effects , 2015, Quantum Inf. Process..
[31] K. Berka,et al. Photoluminescence effects of graphitic core size and surface functional groups in carbon dots: COO− induced red-shift emission , 2014 .
[32] Kejin Wei,et al. Multi-group dynamic quantum secret sharing with single photons , 2016 .
[33] D. Xiao,et al. A time-dependent DFT study of the absorption and fluorescence properties of graphene quantum dots. , 2014, Chemphyschem : a European journal of chemical physics and physical chemistry.
[34] John G. Rarity,et al. Chip-to-chip quantum teleportation and multi-photon entanglement in silicon , 2019 .
[35] Y. Yue,et al. Fluorescence spectroscopy of graphene quantum dots: temperature effect at different excitation wavelengths , 2014, Nanotechnology.
[36] Junxiao Wu,et al. Investigation of the Microstructures of Graphene Quantum Dots (GQDs) by Surface-Enhanced Raman Spectroscopy , 2018, Nanomaterials.
[37] Yasuhiko Arakawa,et al. Quantum-dot single-photon source on a CMOS silicon photonic chip integrated using transfer printing , 2018, APL Photonics.
[38] Seung Geol Lee,et al. Tunable Electronic Properties of Nitrogen and Sulfur Doped Graphene: Density Functional Theory Approach , 2019, Nanomaterials.
[39] Pengzhen Cui. Effect of boron and nitrogen doping on carrier relaxation dynamics of graphene quantum dots , 2018, Materials Research Express.
[40] J. Roch,et al. Photon statistics characterization of a single-photon source , 2003, quant-ph/0312084.
[41] Ab initio study on the effects of MoO3 molecule on graphene clusters , 2012 .
[42] Martin Fischer,et al. Single photon emission from silicon-vacancy colour centres in chemical vapour deposition nano-diamonds on iridium , 2010, 1008.4736.
[43] A. Srivastava,et al. Entanglement of single-photons and chiral phonons in atomically thin WSe2 , 2018, Nature Physics.
[44] Jin Suk Chung,et al. The effect of solvent polarity on emission properties of carbon dots and their uses in colorimetric sensors for water and humidity , 2019, Materials Research Bulletin.
[45] Yan Cao,et al. Coal-derived nitrogen, phosphorus and sulfur co-doped graphene quantum dots: A promising ion fluorescent probe , 2018, Applied Surface Science.
[46] S. Mohammadnejad,et al. CNOT-based quantum swapping of polarization and modal encoded qubits in photonic Ti:LiNbO3 channel waveguides , 2019, Optical and Quantum Electronics.
[47] Manjinder Singh,et al. Effect of sulfur doping on fluorescence and quantum yield of graphene quantum dots: an experimental and theoretical investigation , 2019, Nanotechnology.
[48] S. Mohammadnejad,et al. Realization of Quantum SWAP Gate Using Photonic Integrated Passive and Electro-optically Active Components , 2019, Fiber and Integrated Optics.
[49] V. Zwiller,et al. All-photonic quantum teleportation using on-demand solid-state quantum emitters , 2018, Science Advances.
[50] T. Seo,et al. Origin of extraordinary luminescence shift in graphene quantum dots with varying excitation energy: An experimental evidence of localized sp2 carbon subdomain , 2017 .
[51] Seokwoo Jeon,et al. Tuning the photoluminescence of graphene quantum dots through the charge transfer effect of functional groups. , 2013, ACS nano.
[52] R. Juang,et al. Fluorescence of functionalized graphene quantum dots prepared from infrared-assisted pyrolysis of citric acid and urea , 2020, Journal of Luminescence.
[53] Xiang Guo,et al. Integrated optomechanical single-photon frequency shifter , 2016, Nature Photonics.
[54] Gui-Lu Long,et al. Experimental quantum secure direct communication with single photons , 2015, Light: Science & Applications.
[55] R. Roy,et al. Amino-functionalized graphene quantum dots: origin of tunable heterogeneous photoluminescence. , 2014, Nanoscale.
[56] Mingce Long,et al. Selenium and nitrogen co-doped carbon quantum dots as a fluorescent probe for perfluorooctanoic acid , 2019, Microchimica Acta.
[57] R. Faccio,et al. Electronic and optical properties of sulfur and nitrogen doped graphene quantum dots: A theoretical study , 2019, Physica E: Low-dimensional Systems and Nanostructures.