Peer-reviewed articles, newest first — generated from _bibliography/papers.bib via tools/bib2yml.py. marks selected work. See also Google Scholar.

2025

  • Figure from Impact of Grain Size on Low-Temperature Carrier Phase Coherence Length in Polycrystalline Halide Perovskite Films
    A. Sen, L. J. Scanlon, A. M. Gaona Carranza, J. L. Mendoza-Cortes, J. Pollanen, R. R. Lunt, and W. J. Gannon. Impact of Grain Size on Low-Temperature Carrier Phase Coherence Length in Polycrystalline Halide Perovskite Films. Adv. Mater. Interfaces, 2025.
    doi:10.1002/admi.202500567
    BibTeX
    @article{sen2025grainsize,
      abbr      = {Adv. Mater. Interfaces},
      title     = {Impact of Grain Size on Low-Temperature Carrier Phase Coherence Length in Polycrystalline Halide Perovskite Films},
      author    = {Sen, Aungkan and Scanlon, Liam J. and Gaona Carranza, Axel Melchor and Mendoza-Cortes, Jose L. and Pollanen, Johannes and Lunt, Richard R. and Gannon, William J.},
      journal   = ami,
      year      = {2025},
      doi       = {10.1002/admi.202500567},
      url       = {https://doi.org/10.1002/admi.202500567},
      html      = {https://doi.org/10.1002/admi.202500567},
      selected  = {true},
      bibtex_show = {true},
      preview= {Coherence.png},
    }

2023

  • Figure from Chalcohalide Antiperovskite Thin Films with Visible Light Absorption and High Charge-Carrier Mobility Processed by Solvent-Free and Low-Temperature Methods
    P. Sebastiá-Luna, N. Rodkey, A. S. Mirza, S. Mertens, S. Lal, A. M. Gaona Carranza, J. Calbo, M. Righetto, M. Sessolo, L. M. Herz, K. Vandewal, E. Ortí, M. Morales-Masis, H. J. Bolink, and F. Palazon. Chalcohalide Antiperovskite Thin Films with Visible Light Absorption and High Charge-Carrier Mobility Processed by Solvent-Free and Low-Temperature Methods. Chem. Mater., 2023.
    doi:10.1021/acs.chemmater.3c01349
    BibTeX
    @article{sebastialuna2023chalcohalide,
      abbr      = {Chem. Mater.},
      title     = {Chalcohalide Antiperovskite Thin Films with Visible Light Absorption and High Charge-Carrier Mobility Processed by Solvent-Free and Low-Temperature Methods},
      author    = {Sebasti{\'a}-Luna, Paz and Rodkey, Nathan and Mirza, Adeem Saeed and Mertens, Sigurd and Lal, Snigdha and Gaona Carranza, Axel Melchor and Calbo, Joaqu{\'\i}n and Righetto, Marcello and Sessolo, Michele and Herz, Laura M. and Vandewal, Koen and Ort{\'\i}, Enrique and Morales-Masis, M{\'o}nica and Bolink, Henk J. and Palazon, Francisco},
      journal   = cm,
      year      = {2023},
      doi       = {10.1021/acs.chemmater.3c01349},
      url       = {https://doi.org/10.1021/acs.chemmater.3c01349},
      html      = {https://doi.org/10.1021/acs.chemmater.3c01349},
      selected  = {true},
      bibtex_show = {true},
      preview= {Antiperovskite.png},
    }

2022

  • Figure from Predicting the Stability and Electronic Structure of Alkali Metal Aurides
    A. M. Gaona Carranza, R. García-Díaz, D. M. Hoat, J. M. Siqueiros, and J. Guerrero-Sánchez. Predicting the Stability and Electronic Structure of Alkali Metal Aurides. J. Phys.: Condens. Matter, 2022.
    doi:10.1088/1361-648X/ac5d1a
    BibTeX
    @article{gaonacarranza2022aurides,
      abbr      = {J. Phys.: Condens. Matter},
      title     = {Predicting the Stability and Electronic Structure of Alkali Metal Aurides},
      author    = {Gaona Carranza, Axel Melchor and Garc{\'\i}a-D{\'\i}az, Reyes and Hoat, D. M. and Siqueiros, Jesus M. and Guerrero-S{\'a}nchez, Jonathan},
      journal   = jpcm,
      year      = {2022},
      doi       = {10.1088/1361-648X/ac5d1a},
      url       = {https://dx.doi.org/10.1088/1361-648X/ac5d1a},
      html      = {https://dx.doi.org/10.1088/1361-648X/ac5d1a},
      bibtex_show = {true},
      preview= {Aurides.png},
    }