DFT-guided structural modeling of end-group acceptors at Y123 core for sensitizers as high-performance organic solar dyes and NLO responses
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M. Zafar | A. Mohyuddin | A. Hassan | S. Noreen | S. Sumrra | C. Güleryüz | Cihat Güleryüz
[1] Muhammad Imran,et al. Enhancing NLO performance by utilizing tyrian purple dye as donor moiety in organic DSSCs with end capped acceptors: A theoretical study. , 2023, Journal of molecular graphics & modelling.
[2] Muhammad Imran,et al. Molecular modeling of mordant black dye for future applications as visible light harvesting materials with anchors: design and excited state dynamics , 2023, Journal of Molecular Modeling.
[3] 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.
[4] 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.
[5] M. Nazar,et al. A DFT Study on New Photovoltaic Dyes to Investigate their NLO Tuning at Near Infrared Region (NIR) as Pull–push Effect by End Capped Acceptors , 2022, Journal of Fluorescence.
[6] G. Aydin,et al. Development of regression models to forecast the CO2 emissions from fossil fuels in the BRICS and MINT countries , 2022, Energy.
[7] 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.
[8] A. Hassan,et al. Exploration of Pull–Push Effect for Novel Photovoltaic Dyes with A–π–D Design: A DFT/TD-DFT Investigation , 2022, Journal of Fluorescence.
[9] M. Javed,et al. Novel pull–push organic switches with D–π–A structural designs: computational design of star shape organic materials , 2022, Structural Chemistry.
[10] M. Javed,et al. Structural and Electronic (Absorption and Fluorescence) Properties of a Stable Triplet Diphenylcarbene: A DFT Study , 2022, Journal of Fluorescence.
[11] Marc J. R. Perez,et al. UPDATE 2022 – A FUNDAMENTAL LOOK AT SUPPLY SIDE ENERGY RESERVES FOR THE PLANET , 2022, Solar Energy Advances.
[12] Yang Li,et al. Recent Progress in Organic Solar Cells: A Review on Materials from Acceptor to Donor , 2022, Molecules.
[13] A. Hassan,et al. Theoretical probing of 3d nano metallic clusters as next generation non-linear optical materials , 2022, Results in Chemistry.
[14] Z. Chohan,et al. New 3d Multifunctional Metal Chelates of Sulfonamide: Spectral, Vibrational, Molecular Modeling, DFT, Medicinal and In Silico Studies , 2022, Journal of Molecular Structure.
[15] T. Wallmersperger,et al. Electrostatic charge distribution in armchair and zigzag carbon nanotubes: a numerical comparison of CNT charge models , 2021, Acta Mechanica.
[16] Yahya Nural,et al. Recent advances in the nonlinear optical (NLO) properties of phthalocyanines: A review , 2021, Dyes and Pigments.
[17] A. Hassan,et al. Exploring the Bioactive Sites of New Sulfonamide Metal Chelates for Multi-Drug Resistance: An Experimental Versus Theoretical Design , 2021, Journal of Inorganic and Organometallic Polymers and Materials.
[18] G. Mustafa,et al. Metal Incorporated Sulfonamides as Promising Multidrug Targets: Combined Enzyme Inhibitory, Antimicrobial, Antioxidant and Theoretical Exploration , 2021, Journal of Molecular Structure.
[19] B. Sahraoui,et al. Design and synthesis of highly conjugated Electronic Phenanthrolines Derivatives for remarkable NLO properties and DFT analysis , 2021 .
[20] M. Ashfaq,et al. Metal incorporated aminothiazole-derived compounds: synthesis, density function theory analysis, in vitro antibacterial and antioxidant evaluation , 2021, Royal Society Open Science.
[21] M. Zafar,et al. New organosulfur metallic compounds as potent drugs: synthesis, molecular modeling, spectral, antimicrobial, drug likeness and DFT analysis , 2021, Molecular Diversity.
[22] Fujun Zhang,et al. A critical review on semitransparent organic solar cells , 2020 .
[23] B. Kan,et al. Recent progress on all‐small molecule organic solar cells using small‐molecule nonfullerene acceptors , 2020 .
[24] I. Yavuz,et al. Structural order and charge transfer in highly strained carbon nanobelts , 2020 .
[25] Venkatesan Jayaprakash,et al. Quantum chemical insight into molecular structure, NBO analysis of the hydrogen-bonded interactions, spectroscopic (FT–IR, FT–Raman), drug likeness and molecular docking of the novel anti COVID-19 molecule 2-[(4,6-diaminopyrimidin-2-yl)sulfanyl]-N-(4-fluorophenyl)acetamide - dimer , 2020, Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy.
[26] H. Yao,et al. PBDB-T and its derivatives: A family of polymer donors enables over 17% efficiency in organic photovoltaics , 2020 .
[27] C. Adachi,et al. Influence of energy gap between charge-transfer and locally excited states on organic long persistence luminescence , 2020, Nature Communications.
[28] Y. Zhang,et al. Regulation of the Molecular Architectures on Second-Order Nonlinear Optical Response and Thermally Activated Delayed Fluorescence Property: Homoconjugation and Twisted Donor–Acceptor , 2020 .
[29] Sharmistha Ghosh,et al. Structural organization and molecular self-assembly of a new class of polar and non-polar four-ring based bent-core molecules , 2019 .
[30] Chil-Min Kim,et al. Stretchable and colorless freestanding microwire arrays for transparent solar cells with flexibility , 2019, Light: Science & Applications.
[31] R. Butcher,et al. Experimental and quantum computational study of two new bridged copper(II) coordination complexes as possible models for antioxidant superoxide dismutase: Molecular structures, X-band electron paramagnetic spectra and cryogenic magnetic properties , 2019, Polyhedron.
[32] Somnath Dey. Recent Progress in Molecular Design of Fused Ring Electron Acceptors for Organic Solar Cells. , 2019, Small.
[33] A. Barsella,et al. Incorporation of a ferrocene unit in the π-conjugated structure of donor-linker-acceptor (D-π-A) chromophores for nonlinear optics (NLO) , 2018, Dyes and Pigments.
[34] M. Akbari,et al. Potential of solar energy in developing countries for reducing energy-related emissions , 2018, Renewable and Sustainable Energy Reviews.
[35] H. Snaith,et al. Determination of the exciton binding energy and effective masses for methylammonium and formamidinium lead tri-halide perovskite semiconductors , 2015, 1511.06507.
[36] M. Chemek,et al. A DFT study of charge-transfer and opto-electronic properties of some new materials involving carbazole units , 2015 .
[37] M. Green,et al. The emergence of perovskite solar cells , 2014, Nature Photonics.
[38] B. Ohtani,et al. Visible-light-induced water splitting based on two-step photoexcitation between dye-sensitized layered niobate and tungsten oxide photocatalysts in the presence of a triiodide/iodide shuttle redox mediator. , 2013, Journal of the American Chemical Society.
[39] Zhiyu Wang,et al. Second-order nonlinear optical activity induced by ordered dipolar chromophores confined in the pores of an anionic metal-organic framework. , 2012, Angewandte Chemie.
[40] Jan Genoe,et al. The Impact of Molecular Orientation on the Photovoltaic Properties of a Phthalocyanine/Fullerene Heterojunction , 2012 .
[41] J. Anthony. Small-Molecule, Nonfullerene Acceptors for Polymer Bulk Heterojunction Organic Photovoltaics† , 2011 .
[42] K. W. Hipps,et al. Differing HOMO and LUMO mediated conduction in a porphyrin nanorod. , 2010, Journal of the American Chemical Society.
[43] Jingyuan Liu,et al. Synchronously reduced surface states, charge recombination, and light absorption length for high-performance organic dye-sensitized solar cells. , 2010, The journal of physical chemistry. B.
[44] Anders Hagfeldt,et al. Dye-sensitized solar cells. , 2010, Chemical reviews.
[45] Kenji Kakiage,et al. High Performance of Si–O–Ti Bonds for Anchoring Sensitizing Dyes on TiO2 Electrodes in Dye-sensitized Solar Cells Evidenced by Using Alkoxysilylazobenzenes , 2010 .
[46] Jia-Hung Tsai,et al. Highly efficient light-harvesting ruthenium sensitizer for thin-film dye-sensitized solar cells. , 2009, ACS nano.
[47] D. M. Bishop,et al. Nonlinear response theory with relaxation: the first-order hyperpolarizability. , 2005, The Journal of chemical physics.
[48] G. Delgado,et al. Photocyclodimers from Z-ligustilide. Experimental results and FMO analysis , 2005 .
[49] Hidetoshi Miura,et al. High efficiency of dye-sensitized solar cells based on metal-free indoline dyes. , 2004, Journal of the American Chemical Society.
[50] Richard H. Friend,et al. The origin of the open-circuit voltage in polyfluorene-based photovoltaic devices , 2002 .
[51] Robert J. McMahon,et al. Thiazole and Thiophene Analogues of Donor−Acceptor Stilbenes: Molecular Hyperpolarizabilities and Structure−Property Relationships , 2000 .
[52] G. Wang,et al. The effect of conjugated groups for favourable molecular planarity and efficient suppression of charge recombination simultaneously of phenothiazine-based organic dyes for dye-sensitized solar cells , 2022, Synthetic Metals.