Ultralow dark current in near-infrared perovskite photodiodes by reducing charge injection and interfacial charge generation

Nature Communications Nature Research 12:1 (2021) 7277

Authors:

Riccardo Ollearo, Junke Wang, Matthew J Dyson, Christ HL Weijtens, Marco Fattori, Bas T van Gorkom, Albert JJM van Breemen, Stefan CJ Meskers, René AJ Janssen, Gerwin H Gelinck

Abstract:

This work investigates how excitation energy, internal electric fields and device architecture control ultrafast charge formation, separation and extraction in organic semiconductors. The thesis contrasts a vacuum-deposited single-component small-molecule system, DCV2-5T, with a solution-processed donor–acceptor blend, PM6:Y6. Transient absorption spectroscopy tracks excited-state populations, electromodulated differential absorption quantifies field-assisted separation and extraction, and optical-pump terahertz-probe spectroscopy evaluates photoconductivity and carrier localisation. Higher photon energy accelerates the initial formation of charges in both systems, yet long-lived charge populations emerge only when early extraction competes successfully with recombination. In DCV2-5T, the dominant bottleneck is extraction in the absence of a donor–acceptor interface rather than charge-generation kinetics. Introducing transport layers increases quantum efficiency but produces slower initial extraction that limits initial photoresponse, relevant for photodiode operation. External reverse bias improves extraction and exposes recombination and localisation as direct competitors to charge collection. In PM6:Y6, durable charge populations arise when excitation accesses delocalised Y6 aggregates at early times. Direct excitation of aggregated Y6 yields the most stable carriers, whereas populations originating from less connected regions show stronger field response. The thesis establishes extraction-limited behaviour in the single-component system and identifies aggregate connectivity with access to delocalised acceptor states as the decisive lever in the blended system

An open-access database and analysis tool for perovskite solar cells based on the FAIR data principles

Nature Energy Springer Nature 7:1 (2021) 107-115

Authors:

T Jesper Jacobsson, Adam Hultqvist, Alberto Garcia-Fernandez, Aman Anand, Amran Al-Ashouri, Anders Hagfeldt, Andrea Crovetto, Antonio Abate, Antonio Gaetano Ricciardulli, Anuja Vijayan, Ashish Kulkarni, Assaf Y Anderson, Barbara Primera Darwich, Bowen Yang, Brendan L Coles, Carlo AR Perini, Carolin Rehermann, Daniel Ramirez, David Fairen-Jimenez, Diego Di Girolamo, Donglin Jia, Elena Avila, Emilio J Juarez-Perez, Fanny Baumann, Florian Mathies, GS Anaya Gonzalez, Gerrit Boschloo, Giuseppe Nasti, Gopinath Paramasivam, Guillermo Martinez-Denegri, Hampus Nasstrom, Hannes Michaels, Hans Kobler, Hua Wu, Iacopo Benesperi, M Ibrahim Dar, Ilknur Bayrak Pehlivan, Isaac E Gould, Jacob N Vagott, Janardan Dagar, Jeff Kettle, Jie Yang, Jinzhao Li, Joel A Smith, Jorge Pascual, Jose J Jeronimo-Rendon, Juan Felipe Montoya, Juan-Pablo Correa-Baena, Junming Qiu, Junxin Wang

Abstract:

Large datasets are now ubiquitous as technology enables higher-throughput experiments, but rarely can a research field truly benefit from the research data generated due to inconsistent formatting, undocumented storage or improper dissemination. Here we extract all the meaningful device data from peer-reviewed papers on metal-halide perovskite solar cells published so far and make them available in a database. We collect data from over 42,400 photovoltaic devices with up to 100 parameters per device. We then develop open-source and accessible procedures to analyse the data, providing examples of insights that can be gleaned from the analysis of a large dataset. The database, graphics and analysis tools are made available to the community and will continue to evolve as an open-source initiative. This approach of extensively capturing the progress of an entire field, including sorting, interactive exploration and graphical representation of the data, will be applicable to many fields in materials science, engineering and biosciences.

Low-cost dopant-free carbazole enamine hole-transporting materials for thermally stable perovskite solar cells

Solar RRL Wiley 6:11 (2021) 2100984

Authors:

Suer Zhou, Maryte Daskeviciene, Matas Steponaitis, Giedre Bubniene, Vygintas Jankauskas, Kelly Schutt, Philippe Holzhey, Ashley R Marshall, Pietro Caprioglio, Grey Christoforo, James M Ball, Tadas Malinauskas, Vytautas Getautis, Henry J Snaith

Abstract:

Perovskite solar cells deliver high efficiencies, but are often made from high-cost bespoke chemicals, such as the archetypical hole-conductor, 2,2′,7,7′-tetrakis(N,N-di-p-methoxy-phenylamine)-9-9′-spirobifluorene (spiro-OMeTAD). Herein, new charge-transporting carbazole-based enamine molecules are reported. The new hole conductors do not require chemical oxidation to reach high power conversion efficiencies (PCEs) when employed in n-type-intrinsic-p-type perovskite solar cells; thus, reducing the risk of moisture degrading the perovskite layer through the hydrophilicity of oxidizing additives that are typically used with conventional hole conductors. Devices made with these new undoped carbazole-based enamines achieve comparable PCEs to those employing doped spiro-OMeTAD, and greatly enhanced stability under 85 °C thermal aging; maintaining 83% of their peak efficiency after 1000 h, compared with spiro-OMeTAD-based devices that degrade to 26% of the peak PCE within 24 h. Furthermore, the carbazole-based enamines can be synthesized without the use of organometallic catalysts and complicated purification techniques, lowering the material cost by one order of magnitude compared with spiro-OMeTAD. As a result, we calculate that the overall manufacturing costs of future photovoltaic (PV) modules are reduced, making the levelized cost of electricity competitive with silicon PV modules.

In situ cadmium surface passivation of perovskite nanocrystals for blue LEDs

Journal of Materials Chemistry A Royal Society of Chemistry (RSC) 9:47 (2021) 26750-26757

Authors:

Woo Hyeon Jeong, Zhongkai Yu, Luca Gregori, Jonghee Yang, Su Ryong Ha, Ji Won Jang, Hochan Song, Jong Hyun Park, Eui Dae Jung, Myoung Hoon Song, Sung Heum Park, Henry J Snaith, Alberto Boretti, Filippo De Angelis, Daniele Meggiolaro, Jeongjae Lee, Hyosung Choi, Bo Ram Lee

Probing the Origin of the Open Circuit Voltage in Perovskite Quantum Dot Photovoltaics

ACS Nano American Chemical Society 15:12 (2021) 19334-19344

Authors:

Brian M Wieliczka, José A Márquez, Alexandra M Bothwell, Qian Zhao, Taylor Moot, Kaitlyn T VanSant, Andrew J Ferguson, Thomas Unold, Darius Kuciauskas, Joseph M Luther

Abstract:

Perovskite quantum dots (PQDs) have many properties that make them attractive for optoelectronic applications, including expanded compositional tunability and crystallographic stabilization. While they have not achieved the same photovoltaic (PV) efficiencies of top-performing perovskite thin films, they do reproducibly show high open circuit voltage (VOC) in comparison. Further understanding of the VOC attainable in PQDs as a function of surface passivation, contact layers, and PQD composition will further progress the field and may lend useful lessons for non-QD perovskite solar cells. Here, we use photoluminescence-based spectroscopic techniques to understand and identify the governing physics of the VOC in CsPbI3 PQDs. In particular, we probe the effect of the ligand exchange and contact interfaces on the VOC and free charge carrier concentration. The free charge carrier concentration is orders of magnitude higher than in typical perovskite thin films and could be tunable through ligand chemistry. Tuning the PQD A-site cation composition via replacement of Cs+ with FA+ maintains the background carrier concentration but reduces the trap density by up to a factor of 40, reducing the VOC deficit. These results dictate how to improve PQD optoelectronic properties and PV device performance and explain the reduced interfacial recombination observed by coupling PQDs with thin-film perovskites for a hybrid absorber layer