Exohedrally and endohedrally doped 15-crown-5 (a crown ether) surface by metals for potential applications as high-performance NLO materials
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[1] M. Ans,et al. Addition of acceptor moiety toward Quinoxaline-based conjugated framework of chromophores for highly efficient organic solar cells , 2023, Journal of Physics and Chemistry of Solids.
[2] M. Ans,et al. End-Capped Modeling of Dithienopicenocarbazole Based Derivatives for High-Performance Photovoltaic Cells with Optoelectronic Response Over 900 nm , 2023, Optik.
[3] Ahmed M. Shawky,et al. Molecular Engineering of Bicarbazole-based Donor Molecules with Remarkable Photovoltaic Parameters for Organic solar cells , 2023, Optik.
[4] Muhammad Imran,et al. Creating intense and refined NLO responses by utilizing dual donor structural designs in A-π-D-π-D-π-A type organic switches: computed device parameters , 2023, Structural Chemistry.
[5] Ahmed M. Shawky,et al. Efficient side-chain engineering of thieno-imidazole salt-based molecule to boost the optoelectronic attributes of organic solar cells: A DFT approach. , 2023, Journal of molecular graphics & modelling.
[6] Ahmed M. Shawky,et al. Environmentally affable and highly efficient donor material based on cyclopentadithiophene (CPDT) framework for remarkable organic solar cells , 2023, Optical Materials.
[7] Muhammad Imran,et al. Enriching the compositional tailoring of NLO responsive dyes with diversity oriented electron acceptors as visible light harvesters: a DFT/TD-DFT approach , 2022, Molecular Physics.
[8] M. Nazar,et al. Structurally modulated D-π-D-A(Semiconductor) anchoring dyes to enhance the tunable NLO response: a DFT/TDDFT quest for new photovoltaic materials , 2022, Structural Chemistry.
[9] K. Ayub,et al. DFT study of transition metals doped calix-4-pyrrole with excellent electronic and non-linear optical properties , 2022, Computational and Theoretical Chemistry.
[10] K. Ayub,et al. Superalkali-based alkalides Li3O@[12-crown-4]M (where M= Li, Na, and K) with remarkable static and dynamic NLO properties; A DFT study , 2022, Materials Science in Semiconductor Processing.
[11] S. Zahid,et al. Environmentally compatible and highly improved hole transport materials (HTMs) based on benzotrithiophene (BTT) skeleton for perovskite as well as narrow bandgap donors for organic solar cells , 2022, Solar Energy.
[12] S. Nazir,et al. Therapeutic potential of graphyne as a new drug-delivery system for daunorubicin to treat cancer: A DFT study , 2021 .
[13] J. Iqbal,et al. Tuning the optoelectronic properties of triphenylamine (TPA) based small molecules by modifying central core for photovoltaic applications , 2021, Journal of Molecular Modeling.
[14] J. Iqbal,et al. Study of nonlinear optical properties of superhalogen and superalkali doped phosphorene , 2021, Journal of Molecular Structure.
[15] G. Biskos,et al. Theoretical investigation of X12O12 (X = Be, Mg, and Ca) in sensing CH2N2: A DFT study , 2021 .
[16] S. Tabassum,et al. A New Strategy of bi-Alkali Metal Doping to Design Boron Phosphide Nanocages of High Nonlinear Optical Response with Better Thermodynamic Stability , 2021, Journal of Inorganic and Organometallic Polymers and Materials.
[17] M. Doust Mohammadi,et al. The adsorption of chlorofluoromethane on pristine, and Al- and Ga-doped boron nitride nanosheets: a DFT, NBO, and QTAIM study , 2020, Journal of Molecular Modeling.
[18] Akhtar Ali,et al. Janus alkaline earthides with excellent NLO response from sodium and potassium as source of excess electrons; a first principles study. , 2020, Journal of molecular graphics & modelling.
[19] J. Iqbal,et al. Designing of benzothiazole based non-fullerene acceptor (NFA) molecules for highly efficient organic solar cells , 2020 .
[20] Faizan Ullah,et al. Alkaline earth metal decorated phosphide nanoclusters for potential applications as high performance NLO materials; A first principle study , 2020 .
[21] K. Ayub,et al. Theoretical study on novel superalkali doped graphdiyne complexes: Unique approach for the enhancement of electronic and nonlinear optical response. , 2020, Journal of molecular graphics & modelling.
[22] Chin‐Hung Lai,et al. A dual approach to study the synthesis, crystal structure and nonlinear optical properties of binuclear Pd(II) complex of 3-methyl-5-(trifluoromethyl) pyrazole and its potential quantum chemical analogues , 2019, Inorganica Chimica Acta.
[23] Faizan Ullah,et al. Superalkalis as a source of diffuse excess electrons in newly designed inorganic electrides with remarkable nonlinear response and deep ultraviolet transparency: A DFT study , 2019, Applied Surface Science.
[24] J. Hou,et al. A theoretical study of alkaline-earthides Li(NH3)4M (M = Be, Mg, Ca) with large first hyperpolarizability , 2019, Journal of Molecular Modeling.
[25] Hai-Shun Wu,et al. Effect of (super)alkali doping on the electronic and second-order nonlinear optical properties of graphitic C3N4 , 2019, Optik.
[26] A. Al‐Saadi,et al. Quantum chemical designing of indolo[3,2,1-jk]carbazole-based dyes for highly efficient nonlinear optical properties , 2019, Chemical Physics Letters.
[27] M. Mumtaz,et al. Exploring the Effect of Electron Withdrawing Groups on Optoelectronic Properties of Pyrazole Derivatives as Efficient Donor and Acceptor Materials for Photovoltaic Devices , 2019, Zeitschrift für Physikalische Chemie.
[28] R. Ludwig,et al. Remarkable nonlinear optical response of alkali metal doped aluminum phosphide and boron phosphide nanoclusters , 2018, Journal of Molecular Liquids.
[29] Z. Su,et al. Transition metals doped fullerenes: structures – NLO property relationships , 2018, Molecular Physics.
[30] J. Iqbal,et al. Theoretical Calculations of the Optical and Electronic Properties of Dithienosilole‐ and Dithiophene‐Based Donor Materials for Organic Solar Cells , 2018 .
[31] R. Jin,et al. Tuning of optoelectronic and charge transport properties in star shaped anthracenothiophene-pyrimidine derivatives as multifunctional materials , 2017 .
[32] R. Ludwig,et al. Phosphides or nitrides for better NLO properties? A detailed comparative study of alkali metal doped nano-cages , 2017 .
[33] J. Iqbal,et al. Enhanced electronic and non-linear optical properties of alkali metal (Li, Na, K) doped boron nitride nano-cages , 2016 .
[34] Limei Song,et al. Modification of alkali metals on silicon-based nanoclusters: An enhanced nonlinear optical response , 2016 .
[35] V. Ji,et al. A first-principles study on gas sensing properties of graphene and Pd-doped graphene , 2015 .
[36] Xuri Huang,et al. Theoretical insights and design of intriguing nonlinear optical species involving the excess electron , 2015 .
[37] Elham Tahmasebi,et al. The influence of alkali metals (Li, Na and K) interaction with Be12O12 and Mg12O12 nanoclusters on their structural, electronic and nonlinear optical properties: A theoretical study , 2015 .
[38] A. Chouaih,et al. Theoretical and Experimental Electrostatic Potential around the m-Nitrophenol Molecule , 2015, Molecules.
[39] Hong-Liang Xu,et al. Role of Excess Electrons in Nonlinear Optical Response. , 2015, The journal of physical chemistry letters.
[40] Weiming Sun,et al. Unusual Manipulative Effects of Spin Multiplicity and Excess Electron Number on the Structure and Nonlinear Optical Response in New Linear and Cyclic Electride Molecules with Multiexcess Electrons , 2014 .
[41] A. Mahmood,et al. Quantum chemical perspective of efficient NLO materials based on dipolar trans-tetraammineruthenium (II) complexes with pyridinium and thiocyanate ligands: First theoretical framework , 2014 .
[42] Jian-Han Zhang,et al. Cs2GeB4O9: a new second-order nonlinear-optical crystal. , 2013, Inorganic chemistry.
[43] Tian Lu,et al. Multiwfn: A multifunctional wavefunction analyzer , 2012, J. Comput. Chem..
[44] M. Iqbal,et al. A DFT Study on The Two‐Dimensional Second‐Order Nonlinear Optical (NLO) Response of Terpyridine‐Substituted Hexamolybdates: Physical Insight on 2D Inorganic–Organic Hybrid Functional Materials , 2012 .
[45] Hong-liang Xu,et al. Capturing a synergistic effect of a conical push and an inward pull in fluoro derivatives of Li@B10H14 basket: toward a higher vertical ionization potential and nonlinear optical response. , 2011, The journal of physical chemistry. A.
[46] K. Clays,et al. Diquat derivatives: highly active, two-dimensional nonlinear optical chromophores with potential redox switchability. , 2010, Journal of the American Chemical Society.
[47] Hong-liang Xu,et al. Quantum mechanical design and structure of the Li@B10H14 basket with a remarkably enhanced electro-optical response. , 2009, Journal of the American Chemical Society.
[48] Z. Su,et al. Prediction of remarkably large second-order nonlinear optical properties of organoimido-substituted hexamolybdates. , 2009, The journal of physical chemistry. A.
[49] Weitao Yang,et al. A donor-nanotube paradigm for nonlinear optical materials. , 2008, Nano letters.
[50] A. Elmali,et al. Linear optical transmission measurements and computational study of linear polarizabilities, first hyperpolarizabilities of a dinuclear iron(III) complex. , 2007, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.
[51] Y. Aoki,et al. Nonlinear optical properties of alkalides Li+(calix[4]pyrrole)M- (M = Li, Na, and K): alkali anion atomic number dependence. , 2006, Journal of the American Chemical Society.
[52] Feng Long Gu,et al. The structure and the large nonlinear optical properties of Li@calix[4]pyrrole. , 2005, Journal of the American Chemical Society.
[53] J. L. Dye,et al. Toward inorganic electrides. , 2002, Journal of the American Chemical Society.
[54] J. Iqbal,et al. Enhanced linear and nonlinear optical response of superhalogen (Al7) doped graphitic carbon nitride (g-C3N4) , 2021 .
[55] K. Ayub,et al. Extremely large nonlinear optical response and excellent electronic stability of true alkaline earthides based on hexaammine complexant , 2020 .
[56] Bumjoon J. Kim,et al. Design of Cyanovinylene‐Containing Polymer Acceptors with Large Dipole Moment Change for Efficient Charge Generation in High‐Performance All‐Polymer Solar Cells , 2018 .
[57] T. Wang,et al. Third-order nonlinearities and optical limiting properties of complex Co2L3 , 2007 .