Solar Energy: Prototype shows how Tiny Photodetectors can Double their efficiency

This image shows an energy diagram of the WSe2-MoSe2 device. When a photon (1) strikes the WSe2 layer, it knocks loose an electron (2), freeing it to conduct through the WSe2 (3). At the junction between the two materials, the electron drops down into MoSe2 (4). The energy given off in the drop catapults a second electron from the WSe2 (5) into the MoSe2 (6), where both electrons are free to move and generate electricity. Credit: University Communications, UC Riverside

This image shows an energy diagram of the WSe2-MoSe2 device. When a photon (1) strikes the WSe2 layer, it knocks loose an electron (2), freeing it to conduct through the WSe2 (3). At the junction between the two materials, the electron drops down into MoSe2 (4). The energy given off in the drop catapults a second electron from the WSe2 (5) into the MoSe2 (6), where both electrons are free to move and generate electricity. Credit: University Communications, UC Riverside

New research invokes quantum mechanical processes that occur when two atomically thin materials are stacked together...

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New Telescope Attachment allows Ground-based Observations of New Worlds

Toward Space-like Photometric Precision from the Ground with Beam-shaping Diffusers. The Astrophysical Journal, 2017; 848 (1): 9 DOI: 10.3847/1538-4357/aa88aa

Observations from telescopes on Earth rival those from telescopes in space. A new, low-cost attachment to telescopes allows previously unachievable precision in ground-based observations of exoplanets – planets beyond our solar system. With the new attachment, ground-based telescopes can produce measurements of light intensity that rival the highest quality photometric observations from space. Penn State astronomers, in close collaboration with the nanofabrication labs at RPC Photonics in Rochester, New York, created custom “beam-shaping” diffusers – carefully structured micro-optic devices that spread incoming light across an image – that are capable of minimizing distortions from the Earth’s atmosphere that can reduce the precision of ground-based observations.

“This inexpensive technol...

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Genetic Body/Brain Connection Identified in Genomic Region linked to Autism

Jasmine M. McCammon, Alicia Blaker-Lee, Xiao Chen, Hazel Sive. The 16p11.2 homologs fam57ba and doc2a generate certain brain and body phenotypes. Human Molecular Genetics, 2017; DOI: 10.1093/hmg/ddx255

Jasmine M. McCammon, Alicia Blaker-Lee, Xiao Chen, Hazel Sive. The 16p11.2 homologs fam57ba and doc2a generate certain brain and body phenotypes. Human Molecular Genetics, 2017; DOI: 10.1093/hmg/ddx255

For the first time, Whitehead Institute scientists have documented a direct link between deletions in two genes – fam57ba and doc2a – in zebrafish and certain brain and body traits, such as seizures, hyperactivity, enlarged head size, and obesity. “Finding the molecular connections between a brain and a body phenotype is indeed really paradigm shifting,” says Whitehead Institute Member Hazel Sive, who is also a professor of biology at MIT...

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Breakthrough in Direct Activation of CO2 and CH4 into Liquid Fuels and Chemicals

One-Step Reforming of CO2 and CH4 into High-Value Liquid Chemicals and Fuels at Room Temperature by Plasma-Driven Catalysis. Angewandte Chemie, 2017; DOI: 10.1002/ange.201707131

One-Step Reforming of CO2 and CH4 into High-Value Liquid Chemicals and Fuels at Room Temperature by Plasma-Driven Catalysis. Angewandte Chemie, 2017; DOI: 10.1002/ange.201707131

Researchers from the University of Liverpool have made a significant breakthrough in the direct conversion of CO2 and methane (CH4) into liquid fuels and chemicals which could help industry to reduce greenhouse gas emissions whilst producing valuable chemical feedstocks. In a paper published in chemistry journal Angewandte Chemie they report a very unique plasma synthesis process for the direct, one-step activation of carbon dioxide and methane into higher value liquid fuels and chemicals (e.g...

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