Publications
Below are the groupâs publications organised by themes.
For the most up to date publication list, please see GoogleScholar
Code
The codebase for projects with associated code is found at GitHub
"Towards an interoperable perovskite description or how to keep track of 300 perovskite ions."
Nature Communications, 2025, 16, 1. link
"The use of ChatGPT to generate experimentally testable hypotheses for improving the surface passivation of perovskite solar cells."
Cell Reports Physical Science, 2024, 5, 7, 102058. link
"A systematic discrepancy between the short circuit current and the integrated quantum efficiency in perovskite solar cells."
Nature Communications, 2023, 14, 1. link
"Big data driven perovskite solar cell stability analysis."
Nature Communications, 2022, 13, 1. link
"The Perovskite Database Project: A Perspective on Collective Data Sharing."
ACS Energy Letters, 2022, 7, 3, 1240-1245. link
"An open-access database and analysis tool for perovskite solar cells based on the FAIR data principles."
Nature Energy, 2021, 7, 1, 107-115. link
"Photoelectrochemical water splitting: an idea heading towards obsolescence?."
Energy and Environmental Science, 2018, 11, 8, 1977-1979. link
"The rapid evolution of highly efficient perovskite solar cells."
Energy and Environmental Science, 2017, 10, 3, 710-727. link
"Unreacted PbI<sub>2</sub> as a Double-Edged Sword for Enhancing the Performance of Perovskite Solar Cells."
Journal of the American Chemical Society, 2016, 138, 32, 10331-10343. link
"Exploration of the compositional space for mixed lead halogen perovskites for high efficiency solar cells."
Energy and Environmental Science, 2016, 9, 5, 1706-1724. link
"Sustainable solar hydrogen production: from photoelectrochemical cells to PV-electrolyzers and back again."
Energy and Environmental Science, 2014, 7, 7, 2056-2070. link
"A monolithic device for solar water splitting based on series interconnected thin film absorbers reaching over 10% solar-to-hydrogen efficiency."
Energy and Environmental Science, 2013, 6, 12, 3676. link
"AI-Generated Hypotheses and the Emergence of Autonomous Scientific Discovery."
ACS Materials Letters, 2026. link
"Tackling the reproducibility gap in perovskite research: a vision for FAIR data and standardised protocols."
EES Solar, 2026, 2, 1, 88-91. link
"The Future of Material Scientists in an Age of Artificial Intelligence."
Advanced Science, 2024, 11, 19. link
"The Perovskite Database Project: A Perspective on Collective Data Sharing."
ACS Energy Letters, 2022, 7, 3, 1240-1245. link
"Photoelectrochemical water splitting: an idea heading towards obsolescence?."
Energy and Environmental Science, 2018, 11, 8, 1977-1979. link
"Sustainable solar hydrogen production: from photoelectrochemical cells to PV-electrolyzers and back again."
Energy and Environmental Science, 2014, 7, 7, 2056-2070. link
"AI-Generated Hypotheses and the Emergence of Autonomous Scientific Discovery."
ACS Materials Letters, 2026. link
"An autonomous living database for perovskite photovoltaics."
ArXiv, 2026. link
"Bayesian Optimisation for the Experimental Sciences: A Practical Guide to DataâEfficient Optimisation of Laboratory Workflows."
Advanced Intelligent Systems, 2026. link
"Density Estimation Based on Mixtures of Gaussians for Perovskite Solar Cells Modeling."
Journal of Chemical Information and Modeling, 2026, 66, 3, 1371-1383. link
"The use of ChatGPT to generate experimentally testable hypotheses for improving the surface passivation of perovskite solar cells."
Cell Reports Physical Science, 2024, 5, 7, 102058. link
"The Future of Material Scientists in an Age of Artificial Intelligence."
Advanced Science, 2024, 11, 19. link
"Application of large datasets to assess trends in the stability of perovskite photovoltaics through machine learning."
Journal of Materials Chemistry A, 2024, 12, 5, 3122-3132. link
"DataâDriven Tunnel Oxide Passivated Contact Solar Cell Performance Analysis Using Machine Learning."
Advanced Materials, 2024, 36, 14. link
"The role of machine learning in perovskite solar cell research."
Journal of Alloys and Compounds, 2023, 960, 170824. link
"The challenge of studying perovskite solar cellsâ stability with machine learning."
Frontiers in Energy Research, 2023, 11. link
"Big data driven perovskite solar cell stability analysis."
Nature Communications, 2022, 13, 1. link
"Enhancing the stability of organic photovoltaics through machine learning."
Nano Energy, 2020, 78, 105342. link
"An autonomous living database for perovskite photovoltaics."
ArXiv, 2026. link
"Tackling the reproducibility gap in perovskite research: a vision for FAIR data and standardised protocols."
EES Solar, 2026, 2, 1, 88-91. link
"Towards an interoperable perovskite description or how to keep track of 300 perovskite ions."
Nature Communications, 2025, 16, 1. link
"The Perovskite Database Project: A Perspective on Collective Data Sharing."
ACS Energy Letters, 2022, 7, 3, 1240-1245. link
"An open-access database and analysis tool for perovskite solar cells based on the FAIR data principles."
Nature Energy, 2021, 7, 1, 107-115. link
"An autonomous living database for perovskite photovoltaics."
ArXiv, 2026. link
"Density Estimation Based on Mixtures of Gaussians for Perovskite Solar Cells Modeling."
Journal of Chemical Information and Modeling, 2026, 66, 3, 1371-1383. link
"Device Performance of Emerging Photovoltaic Materials (Version 6)."
Advanced Energy Materials, 2025, 16, 7. link
"Tackling the reproducibility gap in perovskite research: a vision for FAIR data and standardised protocols."
EES Solar, 2026, 2, 1, 88-91. link
"Towards an interoperable perovskite description or how to keep track of 300 perovskite ions."
Nature Communications, 2025, 16, 1. link
"Spatial PbI2 distribution impacting stability of perovskite solar cells."
Journal of Energy Chemistry, 2025, 105, 446-453. link
"Device Performance of Emerging Photovoltaic Materials (Version 5)."
Advanced Energy Materials, 2024, 15, 12. link
"The use of ChatGPT to generate experimentally testable hypotheses for improving the surface passivation of perovskite solar cells."
Cell Reports Physical Science, 2024, 5, 7, 102058. link
"Modelling iodine diffusion in 2D-Perovskites as a function of the length of the organic spacer molecules."
Solar Energy, 2024, 272, 112458. link
"Application of large datasets to assess trends in the stability of perovskite photovoltaics through machine learning."
Journal of Materials Chemistry A, 2024, 12, 5, 3122-3132. link
"Rationalizing Performance Losses of Wide Bandgap Perovskite Solar Cells Evident in Data from the <i>Perovskite Database</i>."
Advanced Energy Materials, 2023, 14, 5. link
"Device Performance of Emerging Photovoltaic Materials (Version 4)."
Advanced Energy Materials, 2023, 14, 4. link
"A systematic discrepancy between the short circuit current and the integrated quantum efficiency in perovskite solar cells."
Nature Communications, 2023, 14, 1. link
"The role of machine learning in perovskite solar cell research."
Journal of Alloys and Compounds, 2023, 960, 170824. link
"The challenge of studying perovskite solar cellsâ stability with machine learning."
Frontiers in Energy Research, 2023, 11. link
"Direct Measurements of Interfacial Photovoltage and Band Alignment in Perovskite Solar Cells Using Hard X-ray Photoelectron Spectroscopy."
ACS Applied Materials & Interfaces, 2023, 15, 9, 12485-12494. link
"Cs<sub>1â<i>x</i></sub>DMA<sub><i>x</i></sub>PbI<sub>3</sub>versus CsPbI<sub>3</sub>for Perovskite Solar Cells."
Solar RRL, 2023, 7, 7. link
"Device Performance of Emerging Photovoltaic Materials (Version 3)."
Advanced Energy Materials, 2022, 13, 1. link
"Big data driven perovskite solar cell stability analysis."
Nature Communications, 2022, 13, 1. link
"Perovskite device efficiency is a poor predictor for the number of citations a paper will get."
Energy Advances, 2022, 1, 12, 1035-1040. link
"Review of technology specific degradation in crystalline silicon, cadmium telluride, copper indium gallium selenide, dye sensitised, organic and perovskite solar cells in photovoltaic modules: Understanding how reliability improvements in mature technologies can enhance emerging technologies."
Progress in Photovoltaics: Research and Applications, 2022, 30, 12, 1365-1392. link
"The Perovskite Database Project: A Perspective on Collective Data Sharing."
ACS Energy Letters, 2022, 7, 3, 1240-1245. link
"The Complex Degradation Mechanism of Copper Electrodes on Lead Halide Perovskites."
ACS Materials Au, 2022, 2, 3, 301-312. link
"An open-access database and analysis tool for perovskite solar cells based on the FAIR data principles."
Nature Energy, 2021, 7, 1, 107-115. link
"Device Performance of Emerging Photovoltaic Materials (Version 2)."
Advanced Energy Materials, 2021, 11, 48. link
"SnO<sub><i>x</i></sub> Atomic Layer Deposition on Bare PerovskiteâAn Investigation of Initial Growth Dynamics, Interface Chemistry, and Solar Cell Performance."
ACS Applied Energy Materials, 2021, 4, 1, 510-522. link
"X-ray stability and degradation mechanism of lead halide perovskites and lead halides."
Physical Chemistry Chemical Physics, 2021, 23, 21, 12479-12489. link
"Device Performance of Emerging Photovoltaic Materials (Version 1)."
Advanced Energy Materials, 2020, 11, 11. link
"2-Terminal CIGS-perovskite tandem cells: A layer by layer exploration."
Solar Energy, 2020, 207, 270-288. link
"Degradation Mechanism of Silver Metal Deposited on Lead Halide Perovskites."
ACS Applied Materials & Interfaces, 2020, 12, 6, 7212-7221. link
"Effect of halide ratio and Cs<sup>+</sup> addition on the photochemical stability of lead halide perovskites."
Journal of Materials Chemistry A, 2018, 6, 44, 22134-22144. link
"Extending the Compositional Space of Mixed Lead Halide Perovskites by Cs, Rb, K, and Na Doping."
The Journal of Physical Chemistry C, 2018, 122, 25, 13548-13557. link
"Photon Energy-Dependent Hysteresis Effects in Lead Halide Perovskite Materials."
The Journal of Physical Chemistry C, 2017, 121, 47, 26180-26187. link
"Valence Level Character in a Mixed Perovskite Material and Determination of the Valence Band Maximum from Photoelectron Spectroscopy: Variation with Photon Energy."
The Journal of Physical Chemistry C, 2017, 121, 48, 26655-26666. link
"Photoinduced Stark Effects and Mechanism of Ion Displacement in Perovskite Solar Cell Materials."
ACS Nano, 2017, 11, 3, 2823-2834. link
"The rapid evolution of highly efficient perovskite solar cells."
Energy and Environmental Science, 2017, 10, 3, 710-727. link
"Unreacted PbI<sub>2</sub> as a Double-Edged Sword for Enhancing the Performance of Perovskite Solar Cells."
Journal of the American Chemical Society, 2016, 138, 32, 10331-10343. link
"Room Temperature as a Goldilocks Environment for CH<sub>3</sub>NH<sub>3</sub>PbI<sub>3</sub> Perovskite Solar Cells: The Importance of Temperature on Device Performance."
The Journal of Physical Chemistry C, 2016, 120, 21, 11382-11393. link
"Unbroken Perovskite: Interplay of Morphology, Electroâoptical Properties, and Ionic Movement."
Advanced Materials, 2016, 28, 25, 5031-5037. link
"Effect of metal cation replacement on the electronic structure of metalorganic halide perovskites: Replacement of lead with alkaline-earth metals."
Physical Review B, 2016, 93, 14. link
"Properties of Contact and Bulk Impedances in Hybrid Lead Halide Perovskite Solar Cells Including Inductive Loop Elements."
The Journal of Physical Chemistry C, 2016, 120, 15, 8023-8032. link
"Exploration of the compositional space for mixed lead halogen perovskites for high efficiency solar cells."
Energy and Environmental Science, 2016, 9, 5, 1706-1724. link
"Goldschmidtâs Rules and Strontium Replacement in Lead Halogen Perovskite Solar Cells: Theory and Preliminary Experiments on CH<sub>3</sub>NH<sub>3</sub>SrI<sub>3</sub>."
The Journal of Physical Chemistry C, 2015, 119, 46, 25673-25683. link
"Determination of Thermal Expansion Coefficients and Locating the Temperature-Induced Phase Transition in Methylammonium Lead Perovskites Using X-ray Diffraction."
Inorganic Chemistry, 2015, 54, 22, 10678-10685. link
"Highly efficient planar perovskite solar cells through band alignment engineering."
Energy and Environmental Science, 2015, 8, 10, 2928-2934. link
"Bayesian Optimisation for the Experimental Sciences: A Practical Guide to DataâEfficient Optimisation of Laboratory Workflows."
Advanced Intelligent Systems, 2026. link
"Device Performance of Emerging Photovoltaic Materials (Version 6)."
Advanced Energy Materials, 2025, 16, 7. link
"Device Performance of Emerging Photovoltaic Materials (Version 5)."
Advanced Energy Materials, 2024, 15, 12. link
"Rationalizing Performance Losses of Wide Bandgap Perovskite Solar Cells Evident in Data from the <i>Perovskite Database</i>."
Advanced Energy Materials, 2023, 14, 5. link
"Device Performance of Emerging Photovoltaic Materials (Version 4)."
Advanced Energy Materials, 2023, 14, 4. link
"The role of machine learning in perovskite solar cell research."
Journal of Alloys and Compounds, 2023, 960, 170824. link
"Device Performance of Emerging Photovoltaic Materials (Version 3)."
Advanced Energy Materials, 2022, 13, 1. link
"Review of technology specific degradation in crystalline silicon, cadmium telluride, copper indium gallium selenide, dye sensitised, organic and perovskite solar cells in photovoltaic modules: Understanding how reliability improvements in mature technologies can enhance emerging technologies."
Progress in Photovoltaics: Research and Applications, 2022, 30, 12, 1365-1392. link
"Device Performance of Emerging Photovoltaic Materials (Version 2)."
Advanced Energy Materials, 2021, 11, 48. link
"Device Performance of Emerging Photovoltaic Materials (Version 1)."
Advanced Energy Materials, 2020, 11, 11. link
"The rapid evolution of highly efficient perovskite solar cells."
Energy and Environmental Science, 2017, 10, 3, 710-727. link
"Quantum Confined Stark Effects in ZnO Quantum Dots Investigated with Photoelectrochemical Methods."
The Journal of Physical Chemistry C, 2014, 118, 22, 12061-12072. link
"A size dependent discontinuous decay rate for the exciton emission in ZnO quantum dots."
Phys. Chem. Chem. Phys., 2014, 16, 27, 13849-13857. link
"A Spectroelectrochemical Method for Locating Fluorescence Trap States in Nanoparticles and Quantum Dots."
The Journal of Physical Chemistry C, 2013, 117, 10, 5497-5504. link
"Antireflective coatings of ZnO quantum dots and their photocatalytic activity."
RSC Advances, 2012, 2, 27, 10298. link
"Photoelectrochemical Determination of the Absolute Band Edge Positions as a Function of Particle Size for ZnO Quantum Dots."
The Journal of Physical Chemistry C, 2012, 116, 29, 15692-15701. link
"Investigation of Vibrational Modes and Phonon Density of States in ZnO Quantum Dots."
The Journal of Physical Chemistry C, 2012, 116, 12, 6893-6901. link
"Absorption and Fluorescence Spectroscopy of Growing ZnO Quantum Dots: Size and Band Gap Correlation and Evidence of Mobile Trap States."
Inorganic Chemistry, 2011, 50, 19, 9578-9586. link
"Photoelectrochemical water splitting: an idea heading towards obsolescence?."
Energy and Environmental Science, 2018, 11, 8, 1977-1979. link
"Phase Formation Behavior in Ultrathin Iron Oxide."
Langmuir, 2015, 31, 45, 12372-12381. link
"A theoretical analysis of optical absorption limits and performance of tandem devices and series interconnected architectures for solar hydrogen production."
Solar Energy Materials and Solar Cells, 2015, 138, 86-95. link
"CIGS based devices for solar hydrogen production spanning from PEC-cells to PV-electrolyzers: A comparison of efficiency, stability and device topology."
Solar Energy Materials and Solar Cells, 2015, 134, 185-193. link
"Sustainable solar hydrogen production: from photoelectrochemical cells to PV-electrolyzers and back again."
Energy and Environmental Science, 2014, 7, 7, 2056-2070. link
"A monolithic device for solar water splitting based on series interconnected thin film absorbers reaching over 10% solar-to-hydrogen efficiency."
Energy and Environmental Science, 2013, 6, 12, 3676. link
"CuInxGa1âxSe2 as an efficient photocathode for solar hydrogen generation."
International Journal of Hydrogen Energy, 2013, 38, 35, 15027-15035. link
"AI-Generated Hypotheses and the Emergence of Autonomous Scientific Discovery."
ACS Materials Letters, 2026. link
"An autonomous living database for perovskite photovoltaics."
ArXiv, 2026. link
"Bayesian Optimisation for the Experimental Sciences: A Practical Guide to DataâEfficient Optimisation of Laboratory Workflows."
Advanced Intelligent Systems, 2026. link
"Density Estimation Based on Mixtures of Gaussians for Perovskite Solar Cells Modeling."
Journal of Chemical Information and Modeling, 2026, 66, 3, 1371-1383. link
"Device Performance of Emerging Photovoltaic Materials (Version 6)."
Advanced Energy Materials, 2025, 16, 7. link
"Tackling the reproducibility gap in perovskite research: a vision for FAIR data and standardised protocols."
EES Solar, 2026, 2, 1, 88-91. link
"Towards an interoperable perovskite description or how to keep track of 300 perovskite ions."
Nature Communications, 2025, 16, 1. link
"Spatial PbI2 distribution impacting stability of perovskite solar cells."
Journal of Energy Chemistry, 2025, 105, 446-453. link
"Device Performance of Emerging Photovoltaic Materials (Version 5)."
Advanced Energy Materials, 2024, 15, 12. link
"The use of ChatGPT to generate experimentally testable hypotheses for improving the surface passivation of perovskite solar cells."
Cell Reports Physical Science, 2024, 5, 7, 102058. link
"The Future of Material Scientists in an Age of Artificial Intelligence."
Advanced Science, 2024, 11, 19. link
"Modelling iodine diffusion in 2D-Perovskites as a function of the length of the organic spacer molecules."
Solar Energy, 2024, 272, 112458. link
"Application of large datasets to assess trends in the stability of perovskite photovoltaics through machine learning."
Journal of Materials Chemistry A, 2024, 12, 5, 3122-3132. link
"DataâDriven Tunnel Oxide Passivated Contact Solar Cell Performance Analysis Using Machine Learning."
Advanced Materials, 2024, 36, 14. link
"Rationalizing Performance Losses of Wide Bandgap Perovskite Solar Cells Evident in Data from the <i>Perovskite Database</i>."
Advanced Energy Materials, 2023, 14, 5. link
"Device Performance of Emerging Photovoltaic Materials (Version 4)."
Advanced Energy Materials, 2023, 14, 4. link
"A systematic discrepancy between the short circuit current and the integrated quantum efficiency in perovskite solar cells."
Nature Communications, 2023, 14, 1. link
"The role of machine learning in perovskite solar cell research."
Journal of Alloys and Compounds, 2023, 960, 170824. link
"The challenge of studying perovskite solar cellsâ stability with machine learning."
Frontiers in Energy Research, 2023, 11. link
"Direct Measurements of Interfacial Photovoltage and Band Alignment in Perovskite Solar Cells Using Hard X-ray Photoelectron Spectroscopy."
ACS Applied Materials & Interfaces, 2023, 15, 9, 12485-12494. link
"Cs<sub>1â<i>x</i></sub>DMA<sub><i>x</i></sub>PbI<sub>3</sub>versus CsPbI<sub>3</sub>for Perovskite Solar Cells."
Solar RRL, 2023, 7, 7. link
"Device Performance of Emerging Photovoltaic Materials (Version 3)."
Advanced Energy Materials, 2022, 13, 1. link
"Big data driven perovskite solar cell stability analysis."
Nature Communications, 2022, 13, 1. link
"Perovskite device efficiency is a poor predictor for the number of citations a paper will get."
Energy Advances, 2022, 1, 12, 1035-1040. link
"Review of technology specific degradation in crystalline silicon, cadmium telluride, copper indium gallium selenide, dye sensitised, organic and perovskite solar cells in photovoltaic modules: Understanding how reliability improvements in mature technologies can enhance emerging technologies."
Progress in Photovoltaics: Research and Applications, 2022, 30, 12, 1365-1392. link
"The Perovskite Database Project: A Perspective on Collective Data Sharing."
ACS Energy Letters, 2022, 7, 3, 1240-1245. link
"The Complex Degradation Mechanism of Copper Electrodes on Lead Halide Perovskites."
ACS Materials Au, 2022, 2, 3, 301-312. link
"An open-access database and analysis tool for perovskite solar cells based on the FAIR data principles."
Nature Energy, 2021, 7, 1, 107-115. link
"Device Performance of Emerging Photovoltaic Materials (Version 2)."
Advanced Energy Materials, 2021, 11, 48. link
"SnO<sub><i>x</i></sub> Atomic Layer Deposition on Bare PerovskiteâAn Investigation of Initial Growth Dynamics, Interface Chemistry, and Solar Cell Performance."
ACS Applied Energy Materials, 2021, 4, 1, 510-522. link
"X-ray stability and degradation mechanism of lead halide perovskites and lead halides."
Physical Chemistry Chemical Physics, 2021, 23, 21, 12479-12489. link
"Device Performance of Emerging Photovoltaic Materials (Version 1)."
Advanced Energy Materials, 2020, 11, 11. link
"Enhancing the stability of organic photovoltaics through machine learning."
Nano Energy, 2020, 78, 105342. link
"2-Terminal CIGS-perovskite tandem cells: A layer by layer exploration."
Solar Energy, 2020, 207, 270-288. link
"Degradation Mechanism of Silver Metal Deposited on Lead Halide Perovskites."
ACS Applied Materials & Interfaces, 2020, 12, 6, 7212-7221. link
"Effect of halide ratio and Cs<sup>+</sup> addition on the photochemical stability of lead halide perovskites."
Journal of Materials Chemistry A, 2018, 6, 44, 22134-22144. link
"Photoelectrochemical water splitting: an idea heading towards obsolescence?."
Energy and Environmental Science, 2018, 11, 8, 1977-1979. link
"Extending the Compositional Space of Mixed Lead Halide Perovskites by Cs, Rb, K, and Na Doping."
The Journal of Physical Chemistry C, 2018, 122, 25, 13548-13557. link
"Photon Energy-Dependent Hysteresis Effects in Lead Halide Perovskite Materials."
The Journal of Physical Chemistry C, 2017, 121, 47, 26180-26187. link
"Valence Level Character in a Mixed Perovskite Material and Determination of the Valence Band Maximum from Photoelectron Spectroscopy: Variation with Photon Energy."
The Journal of Physical Chemistry C, 2017, 121, 48, 26655-26666. link
"Photoinduced Stark Effects and Mechanism of Ion Displacement in Perovskite Solar Cell Materials."
ACS Nano, 2017, 11, 3, 2823-2834. link
"The rapid evolution of highly efficient perovskite solar cells."
Energy and Environmental Science, 2017, 10, 3, 710-727. link
"Unreacted PbI<sub>2</sub> as a Double-Edged Sword for Enhancing the Performance of Perovskite Solar Cells."
Journal of the American Chemical Society, 2016, 138, 32, 10331-10343. link
"Room Temperature as a Goldilocks Environment for CH<sub>3</sub>NH<sub>3</sub>PbI<sub>3</sub> Perovskite Solar Cells: The Importance of Temperature on Device Performance."
The Journal of Physical Chemistry C, 2016, 120, 21, 11382-11393. link
"Unbroken Perovskite: Interplay of Morphology, Electroâoptical Properties, and Ionic Movement."
Advanced Materials, 2016, 28, 25, 5031-5037. link
"Effect of metal cation replacement on the electronic structure of metalorganic halide perovskites: Replacement of lead with alkaline-earth metals."
Physical Review B, 2016, 93, 14. link
"Properties of Contact and Bulk Impedances in Hybrid Lead Halide Perovskite Solar Cells Including Inductive Loop Elements."
The Journal of Physical Chemistry C, 2016, 120, 15, 8023-8032. link
"Exploration of the compositional space for mixed lead halogen perovskites for high efficiency solar cells."
Energy and Environmental Science, 2016, 9, 5, 1706-1724. link
"Goldschmidtâs Rules and Strontium Replacement in Lead Halogen Perovskite Solar Cells: Theory and Preliminary Experiments on CH<sub>3</sub>NH<sub>3</sub>SrI<sub>3</sub>."
The Journal of Physical Chemistry C, 2015, 119, 46, 25673-25683. link
"Determination of Thermal Expansion Coefficients and Locating the Temperature-Induced Phase Transition in Methylammonium Lead Perovskites Using X-ray Diffraction."
Inorganic Chemistry, 2015, 54, 22, 10678-10685. link
"Phase Formation Behavior in Ultrathin Iron Oxide."
Langmuir, 2015, 31, 45, 12372-12381. link
"Highly efficient planar perovskite solar cells through band alignment engineering."
Energy and Environmental Science, 2015, 8, 10, 2928-2934. link
"A theoretical analysis of optical absorption limits and performance of tandem devices and series interconnected architectures for solar hydrogen production."
Solar Energy Materials and Solar Cells, 2015, 138, 86-95. link
"CIGS based devices for solar hydrogen production spanning from PEC-cells to PV-electrolyzers: A comparison of efficiency, stability and device topology."
Solar Energy Materials and Solar Cells, 2015, 134, 185-193. link
"Sustainable solar hydrogen production: from photoelectrochemical cells to PV-electrolyzers and back again."
Energy and Environmental Science, 2014, 7, 7, 2056-2070. link
"Quantum Confined Stark Effects in ZnO Quantum Dots Investigated with Photoelectrochemical Methods."
The Journal of Physical Chemistry C, 2014, 118, 22, 12061-12072. link
"A size dependent discontinuous decay rate for the exciton emission in ZnO quantum dots."
Phys. Chem. Chem. Phys., 2014, 16, 27, 13849-13857. link
"Optical quantum confinement in low dimensional hematite."
J. Mater. Chem. A, 2014, 2, 10, 3352-3363. link
"A monolithic device for solar water splitting based on series interconnected thin film absorbers reaching over 10% solar-to-hydrogen efficiency."
Energy and Environmental Science, 2013, 6, 12, 3676. link
"CuInxGa1âxSe2 as an efficient photocathode for solar hydrogen generation."
International Journal of Hydrogen Energy, 2013, 38, 35, 15027-15035. link
"A Spectroelectrochemical Method for Locating Fluorescence Trap States in Nanoparticles and Quantum Dots."
The Journal of Physical Chemistry C, 2013, 117, 10, 5497-5504. link
"Antireflective coatings of ZnO quantum dots and their photocatalytic activity."
RSC Advances, 2012, 2, 27, 10298. link
"Photoelectrochemical Determination of the Absolute Band Edge Positions as a Function of Particle Size for ZnO Quantum Dots."
The Journal of Physical Chemistry C, 2012, 116, 29, 15692-15701. link
"Investigation of Vibrational Modes and Phonon Density of States in ZnO Quantum Dots."
The Journal of Physical Chemistry C, 2012, 116, 12, 6893-6901. link
"Absorption and Fluorescence Spectroscopy of Growing ZnO Quantum Dots: Size and Band Gap Correlation and Evidence of Mobile Trap States."
Inorganic Chemistry, 2011, 50, 19, 9578-9586. link