The Experts below are selected from a list of 15222 Experts worldwide ranked by ideXlab platform
Matthew Schuette White - One of the best experts on this subject based on the ideXlab platform.
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flexible high power per weight perovskite solar cells with Chromium Oxide metal contacts for improved stability in air
Nature Materials, 2015Co-Authors: Martin Kaltenbrunner, Getachew Adam, Lucia Leonat, Heiko Groiss, Dogukan Hazar Apaydin, Michael Drack, Reinhard Schwödiauer, Eric Daniel Glowacki, Markus Scharber, Matthew Schuette WhiteAbstract:The use of a Chromium Oxide interlayer separating the perovskite film from the metal contacts improves the stability of perovskite solar cells in air. Deposited on thin plastic foils, these ultralight devices power model airplanes and dirigibles.
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Flexible high power-per-weight perovskite solar cells with Chromium Oxide-metal contacts for improved stability in air
Nature Materials, 2015Co-Authors: Martin Kaltenbrunner, Getachew Adam, Eric Daniel Głowacki, Lucia Leonat, Heiko Groiss, Dogukan Hazar Apaydin, Michael Drack, Reinhard Schwödiauer, Matthew Schuette WhiteAbstract:Photovoltaic technology requires light-absorbing materials that are highly efficient, lightweight, low cost and stable during operation. Organolead halide perovskites constitute a highly promising class of materials, but suffer limited stability under ambient conditions without heavy and costly encapsulation. Here, we report ultrathin (3[thinsp][mu]m), highly flexible perovskite solar cells with stabilized 12% efficiency and a power-per-weight as high as 23[thinsp]W[thinsp]g-1. To facilitate air-stable operation, we introduce a Chromium Oxide-Chromium interlayer that effectively protects the metal top contacts from reactions with the perovskite. The use of a transparent polymer electrode treated with dimethylsulphOxide as the bottom layer allows the deposition[mdash]from solution at low temperature[mdash]of pinhole-free perovskite films at high yield on arbitrary substrates, including thin plastic foils. These ultra-lightweight solar cells are successfully used to power aviation models. Potential future applications include unmanned aerial vehicles[mdash]from airplanes to quadcopters and weather balloons[mdash]for environmental and industrial monitoring, rescue and emergency response, and tactical security applications.
Martin Kaltenbrunner - One of the best experts on this subject based on the ideXlab platform.
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flexible high power per weight perovskite solar cells with Chromium Oxide metal contacts for improved stability in air
Nature Materials, 2015Co-Authors: Martin Kaltenbrunner, Getachew Adam, Lucia Leonat, Heiko Groiss, Dogukan Hazar Apaydin, Michael Drack, Reinhard Schwödiauer, Eric Daniel Glowacki, Markus Scharber, Matthew Schuette WhiteAbstract:The use of a Chromium Oxide interlayer separating the perovskite film from the metal contacts improves the stability of perovskite solar cells in air. Deposited on thin plastic foils, these ultralight devices power model airplanes and dirigibles.
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Flexible high power-per-weight perovskite solar cells with Chromium Oxide-metal contacts for improved stability in air
Nature Materials, 2015Co-Authors: Martin Kaltenbrunner, Getachew Adam, Eric Daniel Głowacki, Lucia Leonat, Heiko Groiss, Dogukan Hazar Apaydin, Michael Drack, Reinhard Schwödiauer, Matthew Schuette WhiteAbstract:Photovoltaic technology requires light-absorbing materials that are highly efficient, lightweight, low cost and stable during operation. Organolead halide perovskites constitute a highly promising class of materials, but suffer limited stability under ambient conditions without heavy and costly encapsulation. Here, we report ultrathin (3[thinsp][mu]m), highly flexible perovskite solar cells with stabilized 12% efficiency and a power-per-weight as high as 23[thinsp]W[thinsp]g-1. To facilitate air-stable operation, we introduce a Chromium Oxide-Chromium interlayer that effectively protects the metal top contacts from reactions with the perovskite. The use of a transparent polymer electrode treated with dimethylsulphOxide as the bottom layer allows the deposition[mdash]from solution at low temperature[mdash]of pinhole-free perovskite films at high yield on arbitrary substrates, including thin plastic foils. These ultra-lightweight solar cells are successfully used to power aviation models. Potential future applications include unmanned aerial vehicles[mdash]from airplanes to quadcopters and weather balloons[mdash]for environmental and industrial monitoring, rescue and emergency response, and tactical security applications.
Reinhard Schwödiauer - One of the best experts on this subject based on the ideXlab platform.
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flexible high power per weight perovskite solar cells with Chromium Oxide metal contacts for improved stability in air
Nature Materials, 2015Co-Authors: Martin Kaltenbrunner, Getachew Adam, Lucia Leonat, Heiko Groiss, Dogukan Hazar Apaydin, Michael Drack, Reinhard Schwödiauer, Eric Daniel Glowacki, Markus Scharber, Matthew Schuette WhiteAbstract:The use of a Chromium Oxide interlayer separating the perovskite film from the metal contacts improves the stability of perovskite solar cells in air. Deposited on thin plastic foils, these ultralight devices power model airplanes and dirigibles.
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Flexible high power-per-weight perovskite solar cells with Chromium Oxide-metal contacts for improved stability in air
Nature Materials, 2015Co-Authors: Martin Kaltenbrunner, Getachew Adam, Eric Daniel Głowacki, Lucia Leonat, Heiko Groiss, Dogukan Hazar Apaydin, Michael Drack, Reinhard Schwödiauer, Matthew Schuette WhiteAbstract:Photovoltaic technology requires light-absorbing materials that are highly efficient, lightweight, low cost and stable during operation. Organolead halide perovskites constitute a highly promising class of materials, but suffer limited stability under ambient conditions without heavy and costly encapsulation. Here, we report ultrathin (3[thinsp][mu]m), highly flexible perovskite solar cells with stabilized 12% efficiency and a power-per-weight as high as 23[thinsp]W[thinsp]g-1. To facilitate air-stable operation, we introduce a Chromium Oxide-Chromium interlayer that effectively protects the metal top contacts from reactions with the perovskite. The use of a transparent polymer electrode treated with dimethylsulphOxide as the bottom layer allows the deposition[mdash]from solution at low temperature[mdash]of pinhole-free perovskite films at high yield on arbitrary substrates, including thin plastic foils. These ultra-lightweight solar cells are successfully used to power aviation models. Potential future applications include unmanned aerial vehicles[mdash]from airplanes to quadcopters and weather balloons[mdash]for environmental and industrial monitoring, rescue and emergency response, and tactical security applications.
Getachew Adam - One of the best experts on this subject based on the ideXlab platform.
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flexible high power per weight perovskite solar cells with Chromium Oxide metal contacts for improved stability in air
Nature Materials, 2015Co-Authors: Martin Kaltenbrunner, Getachew Adam, Lucia Leonat, Heiko Groiss, Dogukan Hazar Apaydin, Michael Drack, Reinhard Schwödiauer, Eric Daniel Glowacki, Markus Scharber, Matthew Schuette WhiteAbstract:The use of a Chromium Oxide interlayer separating the perovskite film from the metal contacts improves the stability of perovskite solar cells in air. Deposited on thin plastic foils, these ultralight devices power model airplanes and dirigibles.
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Flexible high power-per-weight perovskite solar cells with Chromium Oxide-metal contacts for improved stability in air
Nature Materials, 2015Co-Authors: Martin Kaltenbrunner, Getachew Adam, Eric Daniel Głowacki, Lucia Leonat, Heiko Groiss, Dogukan Hazar Apaydin, Michael Drack, Reinhard Schwödiauer, Matthew Schuette WhiteAbstract:Photovoltaic technology requires light-absorbing materials that are highly efficient, lightweight, low cost and stable during operation. Organolead halide perovskites constitute a highly promising class of materials, but suffer limited stability under ambient conditions without heavy and costly encapsulation. Here, we report ultrathin (3[thinsp][mu]m), highly flexible perovskite solar cells with stabilized 12% efficiency and a power-per-weight as high as 23[thinsp]W[thinsp]g-1. To facilitate air-stable operation, we introduce a Chromium Oxide-Chromium interlayer that effectively protects the metal top contacts from reactions with the perovskite. The use of a transparent polymer electrode treated with dimethylsulphOxide as the bottom layer allows the deposition[mdash]from solution at low temperature[mdash]of pinhole-free perovskite films at high yield on arbitrary substrates, including thin plastic foils. These ultra-lightweight solar cells are successfully used to power aviation models. Potential future applications include unmanned aerial vehicles[mdash]from airplanes to quadcopters and weather balloons[mdash]for environmental and industrial monitoring, rescue and emergency response, and tactical security applications.
Michael Drack - One of the best experts on this subject based on the ideXlab platform.
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flexible high power per weight perovskite solar cells with Chromium Oxide metal contacts for improved stability in air
Nature Materials, 2015Co-Authors: Martin Kaltenbrunner, Getachew Adam, Lucia Leonat, Heiko Groiss, Dogukan Hazar Apaydin, Michael Drack, Reinhard Schwödiauer, Eric Daniel Glowacki, Markus Scharber, Matthew Schuette WhiteAbstract:The use of a Chromium Oxide interlayer separating the perovskite film from the metal contacts improves the stability of perovskite solar cells in air. Deposited on thin plastic foils, these ultralight devices power model airplanes and dirigibles.
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Flexible high power-per-weight perovskite solar cells with Chromium Oxide-metal contacts for improved stability in air
Nature Materials, 2015Co-Authors: Martin Kaltenbrunner, Getachew Adam, Eric Daniel Głowacki, Lucia Leonat, Heiko Groiss, Dogukan Hazar Apaydin, Michael Drack, Reinhard Schwödiauer, Matthew Schuette WhiteAbstract:Photovoltaic technology requires light-absorbing materials that are highly efficient, lightweight, low cost and stable during operation. Organolead halide perovskites constitute a highly promising class of materials, but suffer limited stability under ambient conditions without heavy and costly encapsulation. Here, we report ultrathin (3[thinsp][mu]m), highly flexible perovskite solar cells with stabilized 12% efficiency and a power-per-weight as high as 23[thinsp]W[thinsp]g-1. To facilitate air-stable operation, we introduce a Chromium Oxide-Chromium interlayer that effectively protects the metal top contacts from reactions with the perovskite. The use of a transparent polymer electrode treated with dimethylsulphOxide as the bottom layer allows the deposition[mdash]from solution at low temperature[mdash]of pinhole-free perovskite films at high yield on arbitrary substrates, including thin plastic foils. These ultra-lightweight solar cells are successfully used to power aviation models. Potential future applications include unmanned aerial vehicles[mdash]from airplanes to quadcopters and weather balloons[mdash]for environmental and industrial monitoring, rescue and emergency response, and tactical security applications.