Mostrando postagens com marcador Photosynthesis. Mostrar todas as postagens
Mostrando postagens com marcador Photosynthesis. Mostrar todas as postagens

quinta-feira, 23 de abril de 2015

Artificial photosynthesis breakthrough turns CO2 emissions into plastics and biofuel

 

 

Researchers have developed an artificial photosynthesis technology that could be a win/win...

Researchers have developed an artificial photosynthesis technology that could be a win/win for the environment (Photo: Shutterstock)

Scientists at the Lawrence Berkeley National Laboratory and the University of California, Berkeley have created a hybrid system of bacteria and semiconducting nanowires that mimics photosynthesis. According to the researchers, their versatile, high-yield system can take water, sunlight and carbon dioxide and turn them into the building blocks of biodegradable plastics, pharmaceutical drugs and even biofuel.

Although renewable energy is making up a growing portion of the world’s energy production, scientists have suggested that the current trends of CO2 buildup in our atmosphere are still likely to lead to serious consequences, and do so sooner than we had anticipated.

One way to keep harmful emissions under control could be to trap the CO2 coming out of smokestacks using materials like polymers or sponges. Some scientists are even going one step further, working on technology that can convert carbon dioxide into useful byproducts like calcium carbonate or biofuels such as methanol and isobutanol. However, these systems are still either very low-yield or in an early experimental phase.

Taking inspiration from Mother Nature, scientists have now devised a system that uses sunlight and water to convert carbon dioxide into a wide range of useful chemicals. Artificial photosynthesis is not a new concept  –  it’s been used to split water into hydrogen and oxygen and synthesize formic acid  –  but this new approach could be a game changer because of its versatility and the high yields it produces.

"Our system has the potential to fundamentally change the chemical and oil industry in that we can produce chemicals and fuels in a totally renewable way, rather than extracting them from deep below the ground," says Peidong Yang, who led the study along with Christopher and Michelle Chang.

Cross-sectional SEM image of the nanowire/bacteria hybrid array used in the new artificial...

Their invention uses two different types of bacteria interspersed within arrays of silicon and titanium nanowires. The silicon nanowires act like a miniature solar cell, capturing incoming light and releasing electrons. These electrons are then absorbed by Sporomusa ovata, an anaerobic bacterium that combines them with water and turns carbon dioxide into acetate, a versatile chemical precursor. Meanwhile, the titanium portion of the structure takes the positive charge left in place of the electron and uses it to extract oxygen from water. The oxygen is used by genetically engineered E. Coli bacteria to synthesize the desired chemicals.

The nanowire array also acts as a layer of protection for the bacteria, burying them in something akin to tall grass so that these usually-oxygen sensitive organisms can survive in adverse environmental conditions like flue gases.

As a proof of principle, the scientists showed that their system can reduce CO2 to chemicals including fuels, polymers and pharmaceutical precursors. The yields were up to 26 percent for butanol, 25 percent for amorphadiene, a precursor to the antimalarial drug artemisinin, and 52 percent for PHB, a renewable and biodegradable plastic, although these figures could rise even further with future optimizations.

The process turns water, sunlight and CO2 into useful chemicals (Image: LBNL)

Solar energy conversion efficiency was at 0.38 percent after 200 hours under simulated sunlight, which the researchers say is about the same as an actual leaf. But the team is already working to improve on this.

"We are currently working on our second generation system which has a solar-to-chemical conversion efficiency of three-percent," says Yang. "Once we can reach a conversion efficiency of 10 percent in a cost effective manner, the technology should be commercially viable."

The team's research appears on the latest issue of the journal Nano Letters.

Source: LBNL

 

quarta-feira, 4 de fevereiro de 2015

Ingenious fine-tuning of plant photosynthesis

 

Malgorzata Pietrzykowska has investigated the specific roles of the two most abundant membrane proteins on Earth, Lhcb1 and 2. Both of them are responsible for light harvesting which is the basis of photosynthesis, the process which sustains life on Earth by providing the oxygen we breathe and the food we eat.

Light is collected by pigments called chlorophylls, which absorb mainly blue and red light, whilst green light is reflected, giving plants their characteristic colour. The majority of chlorophylls are associated with the Lhc (light harvesting chlorophyll) protein superfamily, which in flowering plants consists of 13 members.

"You have surely noticed that the amount of light during the day is continuously changing. Unlike animals, plants cannot move towards or away from sunlight, therefore they have evolved mechanisms which allow them to cope with the rapid changes in light quality and intensity," says Malgorzata Pietrzykowska.

One such process, called state transition, allows plants to redistribute the excess energy from photosystem II (PSII) to photosystem I (PSI), or vice versa. State transitions are regulated by phosphorylation/dephosphorylation of Lhcb1 and Lhcb2.

In the model plant species Arabidopsis thaliana Lhcb1 is encoded by as many as five genes, while Lhcb2 is encoded by three, and the proteins are 98% similar at amino acid sequence level.

"When I started my PhD, I was amazed by the seemingly huge redundancy of these two proteins. Why do plants need so many copies of almost identical proteins?" asks Malgorzata Pietrzykowska.

Malgorzata Pietrzykowska shows that Lhcb1 is important for regulating the amount of light harvesting and for providing quenching sites when too much light is absorbed. More importantly, the abundance of Lhcb1 modulates the size and provides flexibility to the photosynthetic membranes.

The role of Lhcb2 on the other hand is mainly in, and limited to, state transitions. When photosystem II is receiving too much energy, Lhcb2 phosphorylation allows detachment of LHCII trimers (consisting of both Lhcb1 and Lhcb2) from PSII, therefore less energy is transferred to PSII. At the same time these trimers attach to photosystem I forming LHCII-PSI complexes, whose formation balances allows energy flow to PSI.

In summary, Malgorzata Pietrzykowska shows that despite their similarity, the functions of Lhcb1 and Lhcb2 are different but complimentary in fine-tuning photosynthetic light absorption.

This thesis can be found online at: http://umu.diva-portal.org/smash/record.jsf?aq2=%5B%5B%5D%5D&c=2&af=%5B%5D&searchType=SIMPLE&query=Malgorzata+Pietrzykowska&language=sv&pid=diva2%3A779204&aq=%5B%5B%5D%5D&jfwid=-7764&sf=all&aqe=%5B%5D&sortOrder=author_sort_asc&onlyFullText=false&noOfRows=50&dswid=-6624


Story Source:

The above story is based on materials provided by Umeå universitet. Note: Materials may be edited for content and length.


 

sexta-feira, 26 de setembro de 2014

On the road to artificial photosynthesis

 

Nanoscience expert Peidong Yang holds appointments with Berkeley Lab, UC Berkeley and the Kavli Energy NanoSciences Institute at Berkeley.

The excessive atmospheric carbon dioxide that is driving global climate change could be harnessed into a renewable energy technology that would be a win for both the environment and the economy. That is the lure of artificial photosynthesis in which the electrochemical reduction of carbon dioxide is used to produce clean, green and sustainable fuels. However, finding a catalyst for reducing carbon dioxide that is highly selective and efficient has proven to be a huge scientific challenge. Meeting this challenge in the future should be easier thanks to new research results from Berkeley Lab.

Peidong Yang, a chemist with Berkeley Lab's Materials Sciences Division, led a study in which bimetallic nanoparticles of gold and copper were used as the catalyst for the carbon dioxide reduction. The results experimentally revealed for the first time the critical influence of the electronic and geometric effects in the reduction reaction.

"Acting synergistically, the electronic and geometric effects dictate the binding strength for reaction intermediates and consequently the catalytic selectivity and efficiency in the electrochemical reduction of carbon dioxide," Yang says. "In the future, the design of carbon dioxide reduction catalysts with good activity and selectivity will require the careful balancing of these two effects as revealed in our study."

Yang, who also holds appointments with the University of California (UC) Berkeley and the Kavli Energy NanoSciences Institute at Berkeley, is a leading authority on nanoparticle phenomena. His most recent research has focused on nanocatalysts fashioned from metal alloys rather than a single metal such as gold, tin or copper.

Nanoscience expert Peidong Yang holds appointments with Berkeley Lab, UC Berkeley and the Kavli Energy NanoSciences Institute at Berkeley. (Photo by Roy Kaltschmidt)

"By alloying, we believe we can tune the binding strength of intermediates on a catalyst surface to enhance the reaction kinetics for the carbon dioxide reduction," he says. "Nanoparticles provide an ideal platform for studying this effect because, through appropriate synthetic processes, we can access a wide range of compositions, sizes and shapes, allowing for a deeper understanding of catalyst performance through precise control of active sites."

In addition, Yang says, nanoparticle as catalysts have high surface-to-volume and surface-to-mass ratios that are advantageous for achieving high catalytic activity. For this new study, uniform gold-copper bimetallic nanoparticles with different compositions were assembled into ordered monolayers then observed during carbon dioxide reduction.

"The ordered monolayers served as a well-defined platform that enabled us to better understand their fundamental catalytic activity in carbon dioxide reduction," Yang says. "Based on our observations, the activity of the gold-copper bimetallic nanoparticles can be explained in terms of the electronic effect, in which the binding of intermediates can be tuned using different surface compositions, and the geometric effect, in which the local atomic arrangement at the active site allows the catalyst to deviate from the scaling relation."

The effects Yang and his colleagues observed for gold-copper bimetallic nanoparticles should hold true for other carbon dioxide reduction catalysts as well.

"We expect the effects we observed to be universal for a wide range of catalysts, as evidenced in other areas of catalysis such as the hydrogen evolution and oxygen reduction reactions," says Dohyung Kim, a member of Yang's research group and a collaborator in this study. "The factors we have identified are based on the solid concept of electrocatalysis."

Knowing the influence of the electronic and geometric effects makes it possible to deduce how intermediate products in the reduction of carbon dioxide, such as carboxylic acid and carbon monoxide, will interact with the surface of a newly proposed catalyst and thereby provide the means for predicting the catalyst's performance. Coupled with the exceptional structuring of active catalytic sites made possible by the use of nanoparticles, the path is paved, Yang and his colleagues believe, for unprecedented improvements in electrochemical carbon dioxide reduction.

"My group is now using the insights gained from this study in the design of next generation carbon dioxide reduction catalysts," Yang says.

A paper describing this research has been published in Nature Communications entitled "Synergistic geometric and electronic effects for electrochemical reduction of carbon dioxide using gold-copper bimetallic nanoparticles." Yang is the corresponding author and Kim is the lead author. The other co-authors are Joaquin Resasco, Yi Yu and Abdullah Mohamed Asiri.


Story Source:

The above story is based on materials provided by DOE/Lawrence Berkeley National Laboratory. Note: Materials may be edited for content and length.


Journal Reference:

  1. Dohyung Kim, Joaquin Resasco, Yi Yu, Abdullah Mohamed Asiri, Peidong Yang. Synergistic geometric and electronic effects for electrochemical reduction of carbon dioxide using gold–copper bimetallic nanoparticles. Nature Communications, 2014; 5: 4948 DOI: 10.1038/ncomms5948