Sunday, March 31, 2013

Stanford researchers find electrical current stemming from plants


Stanford engineers have generated electrical current by tapping into the electron activity in individual algae cells. Photosynthesis excites electrons, which can then be turned into an electrical current using a specially designed gold electrode. This study could be the first step toward carbon-free electricity directly from plants.
BY GWYNETH DICKEY
In an electrifying first, Stanford scientists have plugged into algae cells and harnessed a tiny electrical current. They found it at the very source of energy production – photosynthesis, a plant's method of converting sunlight to chemical energy. It may be a first step toward generating high-efficiency bioelectricity that doesn't give off carbon dioxide as a byproduct, the researchers say.
"We believe we are the first to extract electrons out of living plant cells," said WonHyoung Ryu, the lead author of the paper published in the March issue of Nano Letters. Ryu conducted the experiments while he was a research associate for mechanical engineering Professor Fritz Prinz.
The Stanford research team developed a unique, ultra-sharp nanoelectrode made of gold, specially designed for probing inside cells. They gently pushed it through the algal cell membranes, which sealed around it, and the cell stayed alive. From the photosynthesizing cells, the electrode collected electrons that had been energized by light and the researchers generated a tiny electrical current.
Early research stage
"We're still in the scientific stages of the research," said Ryu. "We were dealing with single cells to prove we can harvest the electrons."
Plants use photosynthesis to convert light energy to chemical energy, which is stored in the bonds of sugars they use for food. The process takes place in chloroplasts, the cellular powerhouses that make sugars and give leaves and algae their green color. In the chloroplasts, water is split into oxygen, protons and electrons. Sunlight penetrates the chloroplast and zaps the electrons to a high energy level, and a protein promptly grabs them. The electrons are passed down a series of proteins, which successively capture more and more of the electrons' energy to synthesize sugars until all the electrons' energy is spent.
In this experiment, the researchers intercepted the electrons just after they had been excited by light and were at their highest energy levels. They placed the gold electrodes in the chloroplasts of algae cells and siphoned off the electrons to generate the tiny electrical current.
The result, the researchers say, is electricity production that doesn't release carbon into the atmosphere. The only byproducts of photosynthesis are protons and oxygen.
"This is potentially one of the cleanest energy sources for energy generation," Ryu said. "But the question is, is it economically feasible?"
Minuscule amount of electricity
Ryu said they were able to draw from each cell just one picoampere, an amount of electricity so tiny that they would need a trillion cells photosynthesizing for one hour just to equal the amount of energy stored in a AA battery. In addition, the cells die after an hour. Ryu said tiny leaks in the membrane around the electrode could be killing the cells, or they may be dying because they're losing out on energy they would normally use for their own life processes. One of the next steps would be to tweak the design of the electrode to extend the life of the cell, Ryu said.
Harvesting electrons this way would be more efficient than burning biofuels, as most plants that are burned for fuel ultimately store only about 3 to 6 percent of available solar energy, Ryu said. His process bypasses the need for combustion, which harnesses only a portion of a plant's stored energy. Electron harvesting in this study was about 20 percent efficient. Ryu said it could theoretically reach 100 percent efficiency one day. (Photovoltaic solar cells are currently about 20 to 40 percent efficient.)
Possible next steps would be to use a plant with larger chloroplasts for a larger collecting area, and a bigger electrode that could capture more electrons. With a longer-lived plant and better collecting ability, they could scale up the process, Ryu said. Ryu is now a professor at Yonsei University in Seoul, South Korea.
Funding for this research came from the Global Climate and Energy Project at Stanford University and the Yonsei University Research Fund of 2009.
Other authors of the paper are Prinz, the senior author; Seoung-Jai Bai, Tibor Fabian, Rainer J. Fasching, Zubin Huang and Joong Sun Park, all researchers in the Rapid Prototyping Laboratory for Energy and Biology at Stanford University; and Jeffrey Moseley and Arthur Grossman, researchers in the Department of Plant Biology at the Carnegie Institution and the Department of Biology at Stanford.


Link Stanford

Sunday, May 13, 2012


Himalayan forests at greater risk from climate change

Climate change will be an additional stress on Indian forests, especially in upper Himalayan stretches, which are already subjected to multiple challenges including over-extraction, livestock grazing and human impact, a government report said here on Wednesday. 

India's second National Communication to the UN Framework Convention on Climate Change, released by environment minister
Jayanthi Natarajan said that the assessment of climate impacts showed that at the nationallevel, 45 per cent of forested grids are likely to undergo changes. In the report, a digital forest map of the country was used to determine spatial location of all the forested areas. 

This map was based on a high-resolution mapping, wherein the entire area of India was divided into over 165,000 grids. Out of these, 35,899 grids were marked as forested grids - along with the forest density and forest types. Vulnerability assessment showed that sensitive forested grids are
spread across India. "However, their concentration is higher in the upper Himalayan stretches, parts of Central India, northern Western Ghats and Eastern Ghats," said the MoEF report towards fulfillment of reporting obligation under the convention.

Tuesday, April 10, 2012

Windmills to power streetlights in Chennai

Imagine 15-metre towers with micro wind turbines above and four solar panels below vying with huge palm trees to create a geometrically regular pattern along the East Coast Road.
These towers, with a hybrid of wind and solar energies systems, will soon be yet another initiative in Chennai Corporation's pursuit of tapping alternative energy sources for better street lighting in the city, particularly along coastal roads that are predominantly in newly added areas.
The civic body has commissioned a study on tapping wind and solar energy with optimum hybrid models for better street lighting in added areas. Chennai, according to persons associated with the study, “is a good wind zone” but is not suitable for big wind turbines over 100 metres in height. However, the initiative using micro wind turbines is also likely to be another stepping stone towards bringing down energy consumption by 25 per cent and to save 36 lakh units in the coming year.
A group of streetlights would be connected to a tower with hybrid power generating systems. These additional street lights would fill the unusual voids between rows of 2.2-lakh streetlights in the 426 sq km of the city, mainly in the coastal zones of Tiruvottiyur, Perungudi and Sholinganallur in the added areas and Tondiarpet, Royapuram, Teynampet and Adyar of the old city limits.
Existing streetlights have been found to be inadequate in many of the expanded areas, which have a relatively low number of 88,000 streetlights. The added areas, which were earlier part of Panchayats, would be the biggest beneficiaries from the proposal for wind and solar energy-based models.
Areas such as the Marina Beach and Elliots Beach are also set to gain from the initiative. Localities in Tiruvottiyur, Sholinganallur and Marina Beach will get pilot projects that will be expanded after ascertaining their viability. In the wake of an increase in power tariff, this proposal is likely to be viable.
These new hybrid facilities would be in addition to the 25,000 solar-powered streetlights proposed in eight new zones. The Corporation has already proposed a massive programme to replace around 60,000 streetlights.
The wind and solar hybrid systems would overcome challenges pertaining to the old system of illumination adopted by many Panchayats earlier. The Corporation's norm of a minimum of a 25-metre distance between two adjacent streetlights would be adhered to during the installation of these facilities in areas such as Tiruvottiyur, Perungudi and Sholinganallur.
The Hindu
http://www.thehindu.com/news/cities/chennai/article3281765.ece