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Dive into the research topics where Pongsakorn Kanjanaboos is active.

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Featured researches published by Pongsakorn Kanjanaboos.


Nature Communications | 2015

Perovskite-fullerene hybrid materials suppress hysteresis in planar diodes

Jixian Xu; Andrei Buin; Alexander H. Ip; Wei Li; Oleksandr Voznyy; Riccardo Comin; Mingjian Yuan; Seokmin Jeon; Zhijun Ning; Jeffrey J. McDowell; Pongsakorn Kanjanaboos; Jon-Paul Sun; Xinzheng Lan; Li Na Quan; Dong Ha Kim; Ian G. Hill; Peter Maksymovych; Edward H. Sargent

Solution-processed planar perovskite devices are highly desirable in a wide variety of optoelectronic applications; however, they are prone to hysteresis and current instabilities. Here we report the first perovskite–PCBM hybrid solid with significantly reduced hysteresis and recombination loss achieved in a single step. This new material displays an efficient electrically coupled microstructure: PCBM is homogeneously distributed throughout the film at perovskite grain boundaries. The PCBM passivates the key PbI3− antisite defects during the perovskite self-assembly, as revealed by theory and experiment. Photoluminescence transient spectroscopy proves that the PCBM phase promotes electron extraction. We showcase this mixed material in planar solar cells that feature low hysteresis and enhanced photovoltage. Using conductive AFM studies, we reveal the memristive properties of perovskite films. We close by positing that PCBM, by tying up both halide-rich antisites and unincorporated halides, reduces electric field-induced anion migration that may give rise to hysteresis and unstable diode behaviour.


Nature Nanotechnology | 2016

Perovskite energy funnels for efficient light-emitting diodes

Mingjian Yuan; Li Na Quan; Riccardo Comin; Grant Walters; Randy P. Sabatini; Oleksandr Voznyy; Sjoerd Hoogland; Yongbiao Zhao; Eric M. Beauregard; Pongsakorn Kanjanaboos; Zheng-Hong Lu; Dong Ha Kim; Edward H. Sargent

Organometal halide perovskites exhibit large bulk crystal domain sizes, rare traps, excellent mobilities and carriers that are free at room temperature-properties that support their excellent performance in charge-separating devices. In devices that rely on the forward injection of electrons and holes, such as light-emitting diodes (LEDs), excellent mobilities contribute to the efficient capture of non-equilibrium charge carriers by rare non-radiative centres. Moreover, the lack of bound excitons weakens the competition of desired radiative (over undesired non-radiative) recombination. Here we report a perovskite mixed material comprising a series of differently quantum-size-tuned grains that funnels photoexcitations to the lowest-bandgap light-emitter in the mixture. The materials function as charge carrier concentrators, ensuring that radiative recombination successfully outcompetes trapping and hence non-radiative recombination. We use the new material to build devices that exhibit an external quantum efficiency (EQE) of 8.8% and a radiance of 80 W sr-1 m-2. These represent the brightest and most efficient solution-processed near-infrared LEDs to date.


Advanced Materials | 2016

Passivation Using Molecular Halides Increases Quantum Dot Solar Cell Performance.

Xinzheng Lan; Oleksandr Voznyy; Amirreza Kiani; F. Pelayo García de Arquer; Abdullah Saud Abbas; Gi-Hwan Kim; Mengxia Liu; Zhenyu Yang; Grant Walters; Jixian Xu; Mingjian Yuan; Zhijun Ning; Fengjia Fan; Pongsakorn Kanjanaboos; Illan J. Kramer; David Zhitomirsky; Philip Lee; Alexander Perelgut; Sjoerd Hoogland; Edward H. Sargent

A solution-based passivation scheme is developed featuring the use of molecular iodine and PbS colloidal quantum dots (CQDs). The improved passivation translates into a longer carrier diffusion length in the solid film. This allows thicker solar-cell devices to be built while preserving efficient charge collection, leading to a certified power conversion efficiency of 9.9%, which is a new record in CQD solar cells.


Nano Letters | 2015

High-Efficiency Colloidal Quantum Dot Photovoltaics via Robust Self-Assembled Monolayers

Gi-Hwan Kim; F. Pelayo García de Arquer; Yung Jin Yoon; Xinzheng Lan; Mengxia Liu; Oleksandr Voznyy; Zhenyu Yang; Fengjia Fan; Alexander H. Ip; Pongsakorn Kanjanaboos; Sjoerd Hoogland; Jin Young Kim; Edward H. Sargent

The optoelectronic tunability offered by colloidal quantum dots (CQDs) is attractive for photovoltaic applications but demands proper band alignment at electrodes for efficient charge extraction at minimal cost to voltage. With this goal in mind, self-assembled monolayers (SAMs) can be used to modify interface energy levels locally. However, to be effective SAMs must be made robust to treatment using the various solvents and ligands required for to fabricate high quality CQD solids. We report robust self-assembled monolayers (R-SAMs) that enable us to increase the efficiency of CQD photovoltaics. Only by developing a process for secure anchoring of aromatic SAMs, aided by deposition of the SAMs in a water-free deposition environment, were we able to provide an interface modification that was robust against the ensuing chemical treatments needed in the fabrication of CQD solids. The energy alignment at the rectifying interface was tailored by tuning the R-SAM for optimal alignment relative to the CQD quantum-confined electron energy levels. This resulted in a CQD PV record power conversion efficiency (PCE) of 10.7% with enhanced reproducibility relative to controls.


Small | 2010

Fabrication and Mechanical Properties of Large-Scale Freestanding Nanoparticle Membranes

Jinbo He; Pongsakorn Kanjanaboos; N. Laszlo Frazer; Adam Weis; Xiao-Min Lin; Heinrich M. Jaeger

Thin-film membranes consisting of nanoparticles are of interest in applications ranging from nanosieves to electric, magnetic, or photonic devices and sensors. However, the fabrication of large-scale membranes in a simple but controlled way has remained a challenge, due to the limited understanding of their mechanical properties. Systematic experiments on ultrathin, freestanding nanoparticle membranes of different core materials, core sizes, and capping ligands are reported. The results demonstrate that a drying-mediated self-assembly process can be used to create close-packed monolayer membranes that span holes tens of micrometers in diameter. Containing up to approximately 10(7) particles, these freely suspended layers exhibit remarkable mechanical properties with Youngs moduli of the order of several GPa, independent of membrane size. Comparison of three different core-ligand combinations suggests that the membranes elastic response is set by how tightly the ligands are bound to the particle cores and by the ligand-ligand interactions.


Advanced Materials | 2015

Perovskite Thin Films via Atomic Layer Deposition

Brandon R. Sutherland; Sjoerd Hoogland; Michael M. Adachi; Pongsakorn Kanjanaboos; Chris T. O. Wong; Jeffrey J. McDowell; Jixian Xu; Oleksandr Voznyy; Zhijun Ning; Arjan J. Houtepen; Edward H. Sargent

A new method to deposit perovskite thin films that benefit from the thickness control and conformality of atomic layer deposition (ALD) is detailed. A seed layer of ALD PbS is place-exchanged with PbI2 and subsequently CH3 NH3 PbI3 perovskite. These films show promising optical properties, with gain coefficients of 3200 ± 830 cm(-1) .


Advanced Materials | 2015

Efficient Spray‐Coated Colloidal Quantum Dot Solar Cells

Illan J. Kramer; James C. Minor; Gabriel Moreno-Bautista; Lisa R. Rollny; Pongsakorn Kanjanaboos; Damir Kopilovic; Susanna M. Thon; Graham H. Carey; Kang Wei Chou; David Zhitomirsky; Aram Amassian; Edward H. Sargent

A colloidal quantum dot solar cell is fabricated by spray-coating under ambient conditions. By developing a room-temperature spray-coating technique and implementing a fully automated process with near monolayer control-an approach termed as sprayLD-an electronic defect is eliminated resulting in solar cell performance and statistical distribution superior to prior batch-processed methods along with a hero performance of 8.1%.


Advanced Materials | 2016

Crosslinked Remote-Doped Hole-Extracting Contacts Enhance Stability under Accelerated Lifetime Testing in Perovskite Solar Cells

Jixian Xu; Oleksandr Voznyy; Riccardo Comin; Xiwen Gong; Grant Walters; Min Liu; Pongsakorn Kanjanaboos; Xinzheng Lan; Edward H. Sargent

A crosslinked hole-extracting electrical contact is reported, which simultaneously improves the stability and lowers the hysteresis of perovskite solar cells. Polymerizable monomers and crosslinking processes are developed to obviate in situ degradation of the under lying perovskite. The crosslinked material is band-aligned with perovskite. The required free carrier density is induced by a high-work-function metal oxide layer atop the device, following a remote-doping strategy.


Advanced Materials | 2015

Synergistic Doping of Fullerene Electron Transport Layer and Colloidal Quantum Dot Solids Enhances Solar Cell Performance

Mingjian Yuan; Oleksandr Voznyy; David Zhitomirsky; Pongsakorn Kanjanaboos; Edward H. Sargent

The spatial location of the predominant source of performance-limiting recombination in todays best colloidal quantum dot (CQD) cells is identified, pinpointing the TiO2:CQD junction; then, a highly n-doped PCBM layer is introduced at the CQD:TiO2 heterointerface. An n-doped PCBM layer is essential to maintain the depletion region and allow for efficient current extraction, thereby producing a record 8.9% in overall power conversion efficiency.


Advanced Materials | 2016

The In-Gap Electronic State Spectrum of Methylammonium Lead Iodide Single-Crystal Perovskites

Valerio Adinolfi; Mingjian Yuan; Riccardo Comin; Emmanuel S. Thibau; Dong Shi; Makhsud I. Saidaminov; Pongsakorn Kanjanaboos; Damir Kopilovic; Sjoerd Hoogland; Zheng-Hong Lu; Osman M. Bakr; Edward H. Sargent

The density of trap states within the bandgap of methylammonium lead iodide single crystals is investigated. Defect states close to both the conduction and valence bands are probed. Additionally, a comprehensive electronic characterization of crystals is carried out, including measurements of the electron and hole mobility, and the energy landscape (band diagram) at the surface.

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Xiao-Min Lin

Argonne National Laboratory

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Fengjia Fan

University of Science and Technology of China

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Jixian Xu

University of Toronto

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