First-Principle Study on Lead-Free Perovskite for Optoelectrical Applications

Hassan Abdulsalam, G. Babaji

Abstract


The research into new types of light harvesters for solar cells is driven by the need to increase their efficiency and make them more reliable. One promising material for replacing the dye-molecule light harvesters is the Organometallic perovskite; the most popular among them is methyl ammonium lead iodide, CH3NH3PbI3. Although methyl ammonium lead iodide, (CH3NH3PbI3) has proven to be an effective photovoltaic material, there remains a huge concern about the toxicity of lead.  An investigation into the possible replacement of lead (Pb) with Germanium (Ge), Silicon (Si), and Tin (Sn) in CH3NH3PbI3 was carried out. Before this investigation, structure building, parameter optimization, determination of the best exchange functional, k-grid convergence test, and determination of equilibrium lattice constant and geometry relaxation were carried out for the first set of materials. Visualization for Electronic and Structural Analysis (VESTA) and Avogadro software were used for the structure building while FHI-aims code was used to simulate these Perovskites materials. The BLYP (a parameterization of GGA) exchange functional gave the minimum single-point energy at a minimum run time for all the structures. The lattice constants obtained using Phonopy (with zero-point energy) are 5.894, 5.907, 6.248, 5.950, and 6.049 ? for CH3NH3GeBr3, CH3NH3GeI3, CH3NH3PbI3, CH3NH3SiI3, and CH3NH3SnI3 respectively. The energy band gap calculated for the second set of materials: CH3NH3GeI3, CH3NH3PbI3, CH3NH3SiI3, CH3NH3SnI3, and CH3NH3GeBr3 at their respective equilibrium lattice constants are 1.606, 1.513, 1.804, 1.051 and 1.925 eV respectively. These calculated band gap values were compared with reported theoretical and experimental values. There is a close agreement in calculated lattice constants and bandgaps with reported theoretical and experimental values. Dielectric constants, refractive index extinction coefficient, absorption coefficient, reflectivity, and optical conductivity of these materials were also determined. The optical properties obtained show that Sn and Ge are a good choice for the replacement of Pb; also, the optical properties obtained indicate that these materials have other possible applications in areas other than photovoltaic technology.


Keywords


Organometallic-perovskite; DFT, FHI-aims; Energy-bandgap; lattice-constant; dielectric constants; refractive-index; extinction-coefficient; absorption; coefficient; reflectivity; optical conductivity

Full Text:

DOWNLOAD PDF

References


Arbuznikov, A., Hybrid exchange correlation functionals and potentials: Concept elaboration. Journal of Structural Chemistry, 2007. 48: p. S1-S31.

Babayigit, A., et al., Toxicity of organometal halide perovskite solar cells. Nature materials, 2016. 15(3): p. 247-251.

Babayigit, A., et al., Assessing the toxicity of Pb-and Sn-based perovskite solar cells in model organism Danio rerio. Scientific reports, 2016. 6(1): p. 1-11.

Abate, A., Perovskite Solar Cells Go Lead Free. Joule, 2017.

Galadanci and G. Babaji, Computations of the Ground State Cohesive Properties Of AlAs Crystalline Structure Using Fhi-Aims Code. Journal of Applied Physics, 2013. 4(5): p. 85-95.

Chen, L.-Q. and Y. Gu, Computational Metallurgy, in Physical Metallurgy. 2014, Elsevier. p. 2807-2835.

Owolabi, J., et al., Determination of Band Structure of Gallium-Arsenide and Aluminium-Arsenide Using Density Functional Theory. Computational Chemistry, 2016. 4(03): p. 73-83.

Henrich, V.E. and P.A. Cox, The surface science of metal oxides. 1996: Cambridge university press.

Jiao, Y., F. Zhang, and S. Meng, Dye sensitized solar cells Principles and new design, in Solar Cells-Dye-Sensitized Devices. 2011, InTech.

Kavan, L., et al., Electrochemical and Photoelectrochemical Investigation of Single-Crystal Anatase. Journal of American Chemical Society, 1996. 8(26): p. 6716-6723.

Brivio, F., A.B. Walker, and A. Walsh, Structural and electronic properties of hybrid perovskites for high-efficiency thin-film photovoltaics from first-principles. Apl Materials, 2013. 1(4): p. 042111.

Yuan, Y., et al., Nature of the band gap of halide perovskites ABX3(A= CH3NH3,Cs; B = Sn, Pb; X= Cl, Br, I): First-principles calculations. Chin. Phys. B 2015. 24(11): p. 5.

Yamada, Y., et al., Photoelectronic Responses in Solution-Processed Perovskite CH3NH3PbI3 Solar Cells Studied by Photoluminescence and Photoabsorption Spectroscopy. IEEE Journal of Photovoltaics, 2015. 5(1): p. 401-405.

Chen, L.-F., et al., Microwave electronics: measurement and materials characterization. 2004: John Wiley & Sons.

Pedesseau, L., et al. Dielectric properties of hybrid perovskites and drift-diffusion modeling of perovskite cells. in Physics, Simulation, and Photonic Engineering of Photovoltaic Devices V. 2016. International Society for Optics and Photonics.

QuantumWise. Optical Properties of Silicon. Reference Manual 2017 [cited 2017 23 November ]; Available from: https://docs.quantumwise.com/v2017/tutorials/optical/optical.html#optical-spectrum.

Park, N.-G., Methodologies for high efficiency perovskite solar cells. Nano convergence, 2016. 3(1): p. 1-13.

Dresselhaus, M., Solid State Physics (Part II): Optical Properties of Solids Retrieved from Lecture Notes Online Web site: http://bookos.org/book/453978/572abc, 2001. 190.

Saha, S., T. Sinha, and A. Mookerjee, Electronic structure, chemical bonding, and optical properties of paraelectric BaTiO 3. Physical Review B, 2000. 62(13): p. 8828.

Wang, L., Measuring optical absorption coefficient of pure water in UV using the integrating cavity absorption meter. 2008, Texas A&M University.

Gervais, F., Optical conductivity of oxides. Materials Science and Engineering: R: Reports, 2002. 39(2-3): p. 29-92.

Valizade, M., M. Heyhat, and M. Maerefat, Experimental comparison of optical properties of nanofluid and metal foam for using in direct absorption solar collectors. Solar Energy Materials and Solar Cells, 2019. 195: p. 71-80.

Ujihara, K., Reflectivity of metals at high temperatures. Journal of Applied Physics, 1972. 43(5): p. 2376-2383.

Afromowitz, M.A., Refractive index of Ga1? xAlxAs. Solid State Communications, 1974. 15(1): p. 59-63.

Oku, T., Crystal structures of CH3NH3PbI3 and related perovskite compounds used for solar cells, in Solar Cells-New Approaches and Reviews. 2015, InTech.

Chen, C., et al., Nonlinear optical borate crystals: Principals and applications. 2012: John Wiley & Sons.

Umadevi, D. and G.W. Watson, Quasiparticle GW Calculations on Lead-Free Hybrid Germanium Iodide Perovskite CH3NH3GeI3 for Photovoltaic Applications. ACS Omega, 2019. 4(3): p. 5661-5669.

Stoumpos, C.C. and M.G. Kanatzidis, The renaissance of halide perovskites and their evolution as emerging semiconductors. Accounts of chemical research, 2015. 48(10): p. 2791-2802.

Yamada, K., et al., Structural Phase Transition and Electrical Conductivity of the Perovskite CH3NH3Sn1-x Pb x Br3 and CsSnBr3. Bulletin of the Chemical Society of Japan, 1990. 63(9): p. 2521-2525.

Yuqiu, J., et al., Exploring electronic and optical properties of CH3NH3GeI3 perovskite: Insights from the first principles. Computational and Theoretical Chemistry, 2017. 1114: p. 20-24.

Hoefler, S.F., G. Trimmel, and T. Rath, Progress on lead-free metal halide perovskites for photovoltaic applications: a review. Monatsh Chem, 2017. 148(5): p. 795-826.

Ahmed, T., et al., Optical properties of organometallic perovskite: An ab initio study using relativistic GW correction and Bethe-Salpeter equation. EPL (Europhysics Letters), 2015. 108(6): p. 67015.

Heyd, J., G.E. Scuseria, and M. Ernzerhof, Hybrid functionals based on a screened Coulomb potential. The Journal of Chemical Physics, 2006. 118(18): p. 8207-8215.

Xu, B., et al., Carbazole?Based Hole?Transport Materials for Efficient Solid?State Dye?Sensitized Solar Cells and Perovskite Solar Cells. Advanced Materials, 2014. 26(38): p. 6629-6634.

Hecht, J., Indirect and Direct Band Gaps, in Understanding lasers: an entry-level guide. 2018, John Wiley & Sons.

Hirasawa, M., et al., Magnetoabsorption of the lowest exciton in perovskite-type compound (CH3NH3)PbI3. Physica B 1994. 201: p. 427-430.

Umari, P., E. Mosconi, and F. De Angelis, Relativistic GW calculations on CH3NH3PbI3 and CH3NH3SnI3 perovskites for solar cell applications. Scientific reports, 2014. 4: p. 4467.

Sa, R., et al., Stable lead-free perovskite solar cells: A first-principles investigation. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 2020. 239: p. 118493.

Hoffman, J.B., A.L. Schleper, and P.V. Kamat, Transformation of sintered CsPbBr3 nanocrystals to cubic CsPbI3 and gradient CsPbBrx I3–x through halide exchange. Journal of the American Chemical Society, 2016. 138(27): p. 8603-8611.

Roknuzzaman, M., et al., Towards lead-free perovskite photovoltaics and optoelectronics by ab-initio simulations. Scientific reports, 2017. 7(1): p. 14025.


Refbacks

  • There are currently no refbacks.


Creative Commons License
This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.

ISSN: 2394-3688

© Science Front Publishers