- Environmental Sciences - 19:00
Intel invests in UK institute to create Global Centre for Research in Sustainable Connected Cities - Literature - 18:00
Queen Victoria's personal journals put online - Environmental Sciences - 16:30
Road2Science: Researching Stronger, Safer, Smarter Infrastructure - Physics - 16:30
Get ready for the transit of Venus! - Medicine - 16:01
Hormone Plays Surprise Role in Fighting Skin Infections - Business - 16:00
Engineering a better society - Law - 14:01
Latest UT/Texas Tribune Poll: Tax Pledge Issue Reveals Conservative Divide - Medicine - 14:00
Device may inject a variety of drugs without using needles - Medicine - 13:00
Stopping drug- induced liver injury - Medicine - 12:02
Penn Offers Benefits- tax Offset to Same- sex Couples - Environmental Sciences - 12:02
Lighting control system at U-M saves energy and costs - Life Sciences - 12:02
UC San Diego Receives $7 Million from DOD for Innovative Neural Research - Social Sciences - 12:00
Better response plans needed for children exposed to domestic violence - Physics - 11:01
Exotic particles, chilled and trapped, form giant matter wave - Business - 11:00
Holidays inspire disadvantaged children to learn, says study - Life Sciences - 10:00
Think big, think seahorse
Chemistry
Physics
Computer Science
Environmental Sciences
Earth Sciences
Life Sciences
Medicine
Business
Literature
History
Psychology
Social Sciences
» » more
Scientists lay out plans for efficient solar energy harvesting

Solar power could be harvested more efficiently and transported over long distances using tiny molecular circuits, according to research inspired by new insights into natural photosynthesis.
Incorporating the latest research into how plants, algae and some bacteria use quantum mechanics to optimise energy production via photosynthesis, scientists have set out how to design molecular "circuitry" that is 10 times smaller than the thinnest electrical wire in computer processors. Published , the report discusses how tiny molecular energy grids could capture, direct, regulate and amplify raw solar energy.
Professor Gregory Scholes, lead author from the University of Toronto said: "Solar fuel production often starts with the energy from light being absorbed by an assembly of molecules. The energy is stored fleetingly as vibrating electrons and then transferred to a suitable reactor.
"It is the same in biological systems. In photosynthesis, for example, antenna complexes comprised of chlorophyll capture sunlight and direct the energy to special proteins that help make oxygen and sugars. It is like plugging those proteins (called reaction centres) into a solar power socket."
In natural systems energy from sunlight is captured by ’coloured’ molecules called dyes or pigments, but is only stored for a billionth of a second. This leaves little time to route the energy from pigments to the molecular machinery that produces fuel or electricity.
The key to transferring and storing energy very quickly is to harness the collective quantum properties of antennae, which are made up of just a few tens of pigments.
Alexandra Olaya-Castro, co-author of the paper from UCL’s department of Physics and Astronomy said: "On a bright sunny day, more than 100 million billion red and blue "coloured" photons strike a leaf each second.
"Under these conditions plants need to be able to both use the energy that is required for growth but also to get rid of excess energy that can be harmful. Transferring energy quickly and in a regulated manner are the two key features of natural light harvesting systems.
"By assuring that all relevant energy scales involved in the process of energy transfer are more or less similar, natural antennae manage to combine quantum and classical phenomena to guarantee efficient and regulated capture, distribution and storage of the sun’s energy."
Summary of lessons from nature about concentrating and distributing solar power with nanoscopic antennae:
Links:
Report
UCL Physics & Astronomy
Alexandra Olaya-Castro
Last job offers
- Civil Engineering - 24.5
Wissensch. Assistent/in MINERGIE® Agentur Bau (80–100 %) - Agronomy - 22.5
Wissenschaftliche Mitarbeiter/in Koordination Agrar-Umweltindikatoren - Social Sciences - 21.5
wissenschaftliche Mitarbeiterin/ wissenschaftlicher Mitarbeiter - Electroengineering - 21.5
Sektionsleiter/in - Electroengineering - 21.5
Elektroingenieur/in FH - Life Sciences - 17.5
Hochschulabsolventen (m/w) Fachrichtungen Biologie, Mikrobiologie, Bio-Informatik... - Computer Science - 23.5
Associate Professor / Senior Lecturer in Human-Computer Interaction with specialization in Visualization... - Physics - 23.5
Professor in experimental materials physics - Literature - 23.5
Professur für italienische und französische Literaturwissenschaft im FB 05 - Romanisches Seminar - Literature - 23.5
Professur für italienische und französische Sprachwissenschaft im Fachbereich Philosophie und Philologie... - Medicine - 24.5
Chair in Bacteriology - YMS360A - Business - 24.5
Associate Professor in Operations Management - Business - 23.5
Full, Assoc, or Asst. Professor in Marketing - Life Sciences - 23.5
Open Rank Professor - Pathology & Lab Med







» Share this page: