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Dive into the research topics where Grant Walters is active.

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Featured researches published by Grant Walters.


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.


Nature | 2015

QUANTUM-DOT-IN-PEROVSKITE SOLIDS

Zhijun Ning; Xiwen Gong; Riccardo Comin; Grant Walters; Fengjia Fan; Oleksandr Voznyy; Emre Yassitepe; Andrei Buin; Sjoerd Hoogland; Edward H. Sargent

Heteroepitaxy—atomically aligned growth of a crystalline film atop a different crystalline substrate—is the basis of electrically driven lasers, multijunction solar cells, and blue-light-emitting diodes. Crystalline coherence is preserved even when atomic identity is modulated, a fact that is the critical enabler of quantum wells, wires, and dots. The interfacial quality achieved as a result of heteroepitaxial growth allows new combinations of materials with complementary properties, which enables the design and realization of functionalities that are not available in the single-phase constituents. Here we show that organohalide perovskites and preformed colloidal quantum dots, combined in the solution phase, produce epitaxially aligned ‘dots-in-a-matrix’ crystals. Using transmission electron microscopy and electron diffraction, we reveal heterocrystals as large as about 60 nanometres and containing at least 20 mutually aligned dots that inherit the crystalline orientation of the perovskite matrix. The heterocrystals exhibit remarkable optoelectronic properties that are traceable to their atom-scale crystalline coherence: photoelectrons and holes generated in the larger-bandgap perovskites are transferred with 80% efficiency to become excitons in the quantum dot nanocrystals, which exploit the excellent photocarrier diffusion of perovskites to produce bright-light emission from infrared-bandgap quantum-tuned materials. By combining the electrical transport properties of the perovskite matrix with the high radiative efficiency of the quantum dots, we engineer a new platform to advance solution-processed infrared optoelectronics.


Nano Letters | 2016

10.6% Certified Colloidal Quantum Dot Solar Cells via Solvent-Polarity-Engineered Halide Passivation

Xinzheng Lan; Oleksandr Voznyy; F. Pelayo García de Arquer; Mengxia Liu; Jixian Xu; Andrew H. Proppe; Grant Walters; Fengjia Fan; Hairen Tan; Min Liu; Zhenyu Yang; Sjoerd Hoogland; Edward H. Sargent

Colloidal quantum dot (CQD) solar cells are solution-processed photovoltaics with broad spectral absorption tunability. Major advances in their efficiency have been made via improved CQD surface passivation and device architectures with enhanced charge carrier collection. Herein, we demonstrate a new strategy to improve further the passivation of CQDs starting from the solution phase. A cosolvent system is employed to tune the solvent polarity in order to achieve the solvation of methylammonium iodide (MAI) and the dispersion of hydrophobic PbS CQDs simultaneously in a homogeneous phase, otherwise not achieved in a single solvent. This process enables MAI to access the CQDs to confer improved passivation. This, in turn, allows for efficient charge extraction from a thicker photoactive layer device, leading to a certified solar cell power conversion efficiency of 10.6%, a new certified record in CQD photovoltaics.


Nature Materials | 2017

Hybrid organic–inorganic inks flatten the energy landscape in colloidal quantum dot solids

Mengxia Liu; Oleksandr Voznyy; Randy P. Sabatini; F. Pelayo García de Arquer; Rahim Munir; Ahmed H. Balawi; Xinzheng Lan; Fengjia Fan; Grant Walters; Ahmad R. Kirmani; Sjoerd Hoogland; Frédéric Laquai; Aram Amassian; Edward H. Sargent

Bandtail states in disordered semiconductor materials result in losses in open-circuit voltage (Voc) and inhibit carrier transport in photovoltaics. For colloidal quantum dot (CQD) films that promise low-cost, large-area, air-stable photovoltaics, bandtails are determined by CQD synthetic polydispersity and inhomogeneous aggregation during the ligand-exchange process. Here we introduce a new method for the synthesis of solution-phase ligand-exchanged CQD inks that enable a flat energy landscape and an advantageously high packing density. In the solid state, these materials exhibit a sharper bandtail and reduced energy funnelling compared with the previous best CQD thin films for photovoltaics. Consequently, we demonstrate solar cells with higher Voc and more efficient charge injection into the electron acceptor, allowing the use of a closer-to-optimum bandgap to absorb more light. These enable the fabrication of CQD solar cells made via a solution-phase ligand exchange, with a certified power conversion efficiency of 11.28%. The devices are stable when stored in air, unencapsulated, for over 1,000 h.


Advanced Materials | 2016

Fast and Sensitive Solution-Processed Visible-Blind Perovskite UV Photodetectors

Valerio Adinolfi; Olivier Ouellette; Makhsud I. Saidaminov; Grant Walters; Ahmed L. Abdelhady; Osman M. Bakr; Edward H. Sargent

The first visible-blind UV photodetector based on MAPbCl3 integrated on a substrate exhibits excellent performance, with responsivities reaching 18 A W(-1) below 400 nm and imaging-compatible response times of 1 ms. This is achieved by using substrate-integrated single crystals, thus overcoming the severe limitations affecting thin films and offering a new application of efficient, solution-processed, visible-transparent perovskite optoelectronics.


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.


Journal of Materials Chemistry C | 2015

Structural, optical, and electronic studies of wide-bandgap lead halide perovskites

Riccardo Comin; Grant Walters; Emmanuel S. Thibau; Oleksandr Voznyy; Zheng-Hong Lu; Edward H. Sargent

We investigate the family of mixed Br/Cl organolead halide perovskites which enable light emission in the blue-violet region of the visible spectrum. We report the structural, optical and electronic properties of this air-stable family of perovskites, demonstrating full bandgap tunability in the 400–550 nm range and enhanced exciton strength upon Cl substitution. We complement this study by tracking the evolution of the band levels across the gap, thereby providing a foundational framework for future optoelectronic applications of these materials.


Nano Letters | 2017

Tailoring the Energy Landscape in Quasi-2D Halide Perovskites Enables Efficient Green-Light Emission

Li Na Quan; Yongbiao Zhao; F. Pelayo García de Arquer; Randy P. Sabatini; Grant Walters; Oleksandr Voznyy; Riccardo Comin; Yiying Li; James Z. Fan; Hairen Tan; Jun Pan; Mingjian Yuan; Osman M. Bakr; Zheng-Hong Lu; Dong Ha Kim; Edward H. Sargent

Organo-metal halide perovskites are a promising platform for optoelectronic applications in view of their excellent charge-transport and bandgap tunability. However, their low photoluminescence quantum efficiencies, especially in low-excitation regimes, limit their efficiency for light emission. Consequently, perovskite light-emitting devices are operated under high injection, a regime under which the materials have so far been unstable. Here we show that, by concentrating photoexcited states into a small subpopulation of radiative domains, one can achieve a high quantum yield, even at low excitation intensities. We tailor the composition of quasi-2D perovskites to direct the energy transfer into the lowest-bandgap minority phase and to do so faster than it is lost to nonradiative centers. The new material exhibits 60% photoluminescence quantum yield at excitation intensities as low as 1.8 mW/cm2, yielding a ratio of quantum yield to excitation intensity of 0.3 cm2/mW; this represents a decrease of 2 orders of magnitude in the excitation power required to reach high efficiency compared with the best prior reports. Using this strategy, we report light-emitting diodes with external quantum efficiencies of 7.4% and a high luminescence of 8400 cd/m2.


Nano Letters | 2015

Colloidal CdSe1–xSx Nanoplatelets with Narrow and Continuously-Tunable Electroluminescence

Fengjia Fan; Pongsakorn Kanjanaboos; Mayuran Saravanapavanantham; Eric M. Beauregard; Grayson L. Ingram; Emre Yassitepe; Michael M. Adachi; Oleksandr Voznyy; Andrew K. Johnston; Grant Walters; Gi-Hwan Kim; Zheng-Hong Lu; Edward H. Sargent

Colloidal nanoplatelets, quasi-two-dimensional quantum wells, have recently been introduced as colloidal semiconductor materials with the narrowest known photoluminescence line width (∼10 nm). Unfortunately, these materials have not been shown to have continuously tunable emission but rather emit at discrete wavelengths that depend strictly on atomic-layer thickness. Herein, we report a new synthesis approach that overcomes this issue: by alloying CdSe colloidal nanoplatelets with CdS, we finely tune the emission spectrum while still leveraging atomic-scale thickness control. We proceed to demonstrate light-emitting diodes with sub-bandgap turn-on voltages (2.1 V for a device emitting at 2.4 eV) and the narrowest electroluminescence spectrum (FWHM ∼12.5 nm) reported for colloidal semiconductor LEDs.

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