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Featured researches published by Yue Qu.


Nature | 2018

Centimetre-scale electron diffusion in photoactive organic heterostructures

Quinn Burlingame; Caleb Coburn; Xiaozhou Che; Anurag Panda; Yue Qu; Stephen R. Forrest

The unique properties of organic semiconductors, such as flexibility and lightness, are increasingly important for information displays, lighting and energy generation. But organics suffer from both static and dynamic disorder, and this can lead to variable-range carrier hopping, which results in notoriously poor electrical properties, with low electron and hole mobilities and correspondingly short charge-diffusion lengths of less than a micrometre. Here we demonstrate a photoactive (light-responsive) organic heterostructure comprising a thin fullerene channel sandwiched between an electron-blocking layer and a blended donor:C70 fullerene heterojunction that generates charges by dissociating excitons. Centimetre-scale diffusion of electrons is observed in the fullerene channel, and this can be fitted with a simple electron diffusion model. Our experiments enable the direct measurement of charge diffusivity in organic semiconductors, which is as high as 0.83 ± 0.07 square centimetres per second in a C60 channel at room temperature. The high diffusivity of the fullerene combined with the extraordinarily long charge-recombination time yields diffusion lengths of more than 3.5 centimetres, orders of magnitude larger than expected for an organic system.


Advanced Materials | 2018

Near‐Infrared Ternary Tandem Solar Cells

Yongxi Li; Jiu-Dong Lin; Xiao Liu; Yue Qu; Fu-Peng Wu; Feng Liu; Zuo-Quan Jiang; Stephen R. Forrest

The paucity of near-infrared (NIR) organic materials with high absorption at long wavelengths, combined with large diffusion lengths and charge mobilities, is an impediment to progress in achieving high-efficiency organic tandem solar cells. Here a subcell is employed within a series tandem stack that comprises a solution-processed ternary blend of two NIR-absorbing nonfullerene acceptors and a polymer donor combined with a small-molecular-weight, short-wavelength fullerene-based subcell grown by vacuum thermal evaporation. The ternary cell achieves a power conversion efficiency of 12.6 ± 0.3% with a short-circuit current of 25.5 ± 0.3 mA cm-2 , an open-circuit voltage of 0.69 ± 0.01 V, and a fill factor of 0.71 ± 0.01 under 1 sun, AM 1.5G spectral illumination. The success of this device is a result of the nearly identical offset energies between the lowest unoccupied molecular orbitals (LUMOs) of the donors with the highest occupied molecular orbital (HOMO) of the acceptor, resulting in a high open-circuit voltage. A tandem structure with an antireflection coating combining these subcells demonstrates a power conversion efficiency of 15.4 ± 0.3%.


Organic Light Emitting Materials and Devices XIX | 2015

Enhanced light extraction from organic light-emitting devices using a sub-anode grid (Presentation Recording)

Yue Qu; Michael Slootsky; Stephen R. Forrest

We demonstrate a method for extracting waveguided light trapped in the organic and indium tin oxide layers of bottom emission organic light emitting devices (OLEDs) using a patterned planar grid layer (sub-anode grid) between the anode and the substrate. The scattering layer consists of two transparent materials with different refractive indices on a period sufficiently large to avoid diffraction and other unwanted wavelength-dependent effects. The position of the sub-anode grid outside of the OLED active region allows complete freedom in varying its dimensions and materials from which it is made without impacting the electrical characteristics of the device itself. Full wave electromagnetic simulation is used to study the efficiency dependence on refractive indices and geometric parameters of the grid. We show the fabrication process and characterization of OLEDs with two different grids: a buried sub-anode grid consisting of two dielectric materials, and an air sub-anode grid consisting of a dielectric material and gridline voids. Using a sub-anode grid, substrate plus air modes quantum efficiency of an OLED is enhanced from (33±2)% to (40±2)%, resulting in an increase in external quantum efficiency from (14±1)% to (18±1)%, with identical electrical characteristics to that of a conventional device. By varying the thickness of the electron transport layer (ETL) of sub-anode grid OLEDs, we find that all power launched into the waveguide modes is scattered into substrate. We also demonstrate a sub-anode grid combined with a thick ETL significantly reduces surface plasmon polaritons, and results in an increase in substrate plus air modes by a >50% compared with a conventional OLED. The wavelength, viewing angle and molecular orientational independence provided by this approach make this an attractive and general solution to the problem of extracting waveguided light and reducing plasmon losses in OLEDs.


Nature Energy | 2018

High fabrication yield organic tandem photovoltaics combining vacuum- and solution-processed subcells with 15% efficiency

Xiaozhou Che; Yongxi Li; Yue Qu; Stephen R. Forrest


Journal of the American Chemical Society | 2017

High Efficiency Near-Infrared and Semitransparent Non-Fullerene Acceptor Organic Photovoltaic Cells

Yongxi Li; Jiu Dong Lin; Xiaozhou Che; Yue Qu; Feng Liu; Liang-Sheng Liao; Stephen R. Forrest


Nature Photonics | 2015

Enhanced light extraction from organic light-emitting devices using a sub-anode grid

Yue Qu; Michael Slootsky; Stephen R. Forrest


ACS Photonics | 2017

Elimination of Plasmon Losses and Enhanced Light Extraction of Top-Emitting Organic Light-Emitting Devices Using a Reflective Subelectrode Grid

Yue Qu; Caleb Coburn; Dejiu Fan; Stephen R. Forrest


ACS Photonics | 2018

Efficient, Nonintrusive Outcoupling in Organic Light Emitting Devices Using Embedded Microlens Arrays

Yue Qu; Jongchan Kim; Caleb Coburn; Stephen R. Forrest


Archive | 2018

ENHANCED OLED OUTCOUPLING BY SUPPRESSING SURFACE PLASMON MODES

Stephen R. Forrest; Yue Qu


ACS Photonics | 2018

Efficient Outcoupling of Organic Light-Emitting Devices Using a Light-Scattering Dielectric Layer

Jongchan Kim; Yue Qu; Caleb Coburn; Stephen R. Forrest

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Feng Liu

Shanghai Jiao Tong University

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Dejiu Fan

University of Michigan

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Xiao Liu

University of Michigan

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