Home > Press > Fine-tuned molecular orientation is key to more efficient solar cells
Schematic illustrating the structure of the new solar cell |
Abstract:
Polymer solar cells are a hot area of research due to both their strong future potential and the significant challenges they pose. It is believed that thanks to lower production costs, they could become a viable alternative to conventional solar cells with silicon substrates when they achieve a power conversion efficiency—a measure that indicates how much electricity they can generate from a given amount of sunlight—of between 10 and 15 percent. Now, using carefully designed materials and an “inverted” architecture, a team of scientists has achieved efficiency of 10 percent, bringing these cells close to the threshold of commercial viability.
Polymer-based solar cells offer a number of potential advantages. They are made of polymers that are inexpensive and flexible, and can be deposited on glass or plastic substrates, allowing the construction of large-scale structures. They are cheaper to manufacture, and more environmentally-friendly, than their silicon counterparts. Unfortunately, they have lower power efficiency due to their structure and also tend to degrade more quickly.
In the research published in Nature Photonics, a collaboration including Itaru Osaka and Kazuo Takimiya of the RIKEN Center for Emergent Matter Science managed to create a type of polymer solar cell called a bulk-heterojunction solar cell—where the electron donor and acceptor layers are mixed together—with a power conversion efficiency of 10%, close to what will allow these materials to be commercially viable.
According to Osaka, “While private firms have been able to develop cells with similar efficiency, they have done so using proprietary technology, so that it was not possible to know why things were working the way they were. We began experimenting with a substance called PNTz4T, which we had previously developed, and were able initially to achieve a power conversion efficiency of about 8%, with a fairly thick active layer of about 300 nanometers. Surprisingly, though, we found that when we used an inverted architecture, where the light enters through a transparent negative electrode, in our case made of zinc oxide, we found that the cell with the inverted architecture had better efficiency, which is abnormal for cells of the type we built. We believe that it is due to the alignment of molecules inside the mixed layers."
The researchers analyzed the composition of the materials using the SPring-8 synchrotron facility in Harima, and found indeed that in the inverted model, the orientation of the molecules within the active layer was very commonly “face-on,” an orientation well suited to the transport of electron holes through the material. Takamiya says, “We surmised that this was the secret to the success in the experiment. It turns out that by trying something that might seem unusual, we got a surprising result, and through this were able to understand something about what makes cells more or less efficient.”
According to Professor Hideyuki Murata of the Japan Advanced Institute of Science and Technology, who participated in the research, “This is an exciting result because we now have an understanding of how we can move forward to create polymer solar cells with greater efficiency. We hope that researchers around the world will be able to make use of these results to create commercially viable cells.”
The work was done in collaboration with the Japan Advanced Institute of Science and Technology, Hiroshima University, and the Japan Synchrotron Radiation Research Institute (JASRI). It was funded by the Japan Science and Technology Agency (JST) under its Precursory Research for Embryonic Science and Technology program.
Full bibliographic information
Varun Vohra, Kazuaki Kawashima, Takeshi Kakara, Tomoyuki Koganezawa, Itaru Osaka2,5*, Kazuo Takimiya and Hideyuki Murata, Efficient inverted polymer solar cells employing favourable molecular orientation, Nature Photonics, doi: 10.1038/nphoton.2015.84
####
About RIKEN
RIKEN is Japan's largest research institute for basic and applied research. Over 2500 papers by RIKEN researchers are published every year in leading scientific and technology journals covering a broad spectrum of disciplines including physics, chemistry, biology, engineering, and medical science. RIKEN's research environment and strong emphasis on interdisciplinary collaboration and globalization has earned a worldwide reputation for scientific excellence.
Website: www.riken.jp/en/
Twitter: @riken_en
Facebook: https://www.facebook.com/RIKEN.english
About the RIKEN Center for Emergent Matter Science (CEMS)
The aim of the research carried out at the Center for Emergent Matter Science (CEMS) is to address humanity's energy problems and contribute to building a sustainable society. Taking a pioneering role in the new field of emergent materials science, scientists at CEMS are developing new, more efficient technologies that will enable us to produce energy without putting a burden on the environment, as well as decrease our energy consumption. They achieve this by combining advanced research in physics, chemistry and electronics in order to produce new technology such as highly efficient energy conversion devices and low-consumption electronics.
Website: http://www.cems.riken.jp/en/
For more information, please click here
Contacts:
Dr. Itaru Osaka
RIKEN Center for Emergent Matter Science, Japan
For more information please contact:
Jens Wilkinson
RIKEN Global Communications
Tel: +81-(0)48-462-1225+81-(0)48-462-1225
http://www.riken.jp/en/
Copyright © RIKEN
If you have a comment, please Contact us.Issuers of news releases, not 7th Wave, Inc. or Nanotechnology Now, are solely responsible for the accuracy of the content.
Related News Press |
News and information
Beyond wires: Bubble technology powers next-generation electronics:New laser-based bubble printing technique creates ultra-flexible liquid metal circuits November 8th, 2024
Nanoparticle bursts over the Amazon rainforest: Rainfall induces bursts of natural nanoparticles that can form clouds and further precipitation over the Amazon rainforest November 8th, 2024
Nanotechnology: Flexible biosensors with modular design November 8th, 2024
Exosomes: A potential biomarker and therapeutic target in diabetic cardiomyopathy November 8th, 2024
Discoveries
Breaking carbon–hydrogen bonds to make complex molecules November 8th, 2024
Exosomes: A potential biomarker and therapeutic target in diabetic cardiomyopathy November 8th, 2024
Turning up the signal November 8th, 2024
Nanofibrous metal oxide semiconductor for sensory face November 8th, 2024
Announcements
Nanotechnology: Flexible biosensors with modular design November 8th, 2024
Exosomes: A potential biomarker and therapeutic target in diabetic cardiomyopathy November 8th, 2024
Turning up the signal November 8th, 2024
Nanofibrous metal oxide semiconductor for sensory face November 8th, 2024
Interviews/Book Reviews/Essays/Reports/Podcasts/Journals/White papers/Posters
Beyond wires: Bubble technology powers next-generation electronics:New laser-based bubble printing technique creates ultra-flexible liquid metal circuits November 8th, 2024
Nanoparticle bursts over the Amazon rainforest: Rainfall induces bursts of natural nanoparticles that can form clouds and further precipitation over the Amazon rainforest November 8th, 2024
Nanotechnology: Flexible biosensors with modular design November 8th, 2024
Exosomes: A potential biomarker and therapeutic target in diabetic cardiomyopathy November 8th, 2024
Energy
KAIST researchers introduce new and improved, next-generation perovskite solar cell November 8th, 2024
Unveiling the power of hot carriers in plasmonic nanostructures August 16th, 2024
Groundbreaking precision in single-molecule optoelectronics August 16th, 2024
Development of zinc oxide nanopagoda array photoelectrode: photoelectrochemical water-splitting hydrogen production January 12th, 2024
Solar/Photovoltaic
KAIST researchers introduce new and improved, next-generation perovskite solar cell November 8th, 2024
Groundbreaking precision in single-molecule optoelectronics August 16th, 2024
Development of zinc oxide nanopagoda array photoelectrode: photoelectrochemical water-splitting hydrogen production January 12th, 2024
Shedding light on unique conduction mechanisms in a new type of perovskite oxide November 17th, 2023
The latest news from around the world, FREE | ||
Premium Products | ||
Only the news you want to read!
Learn More |
||
Full-service, expert consulting
Learn More |
||