Graphene bags significantly reduce platinum requirements for hydrogen fuel cells

Roche and its subsidiary TIB Molbiol have developed a series of tests for the detection of the monkeypox virus, the Switzerland-based pharmaceutical company announced.  

The monkeypox virus is a close relative of the smallpox virus, belonging to orthpoxviridae in the poxviridae family.  

The modular virus detection tool, called LightMix, includes three orthpoxvirus detection kits with different functions, Roche said in a statement. The first kit detects orthpoxvirus; The second kit tests only for monkeypox virus (west and Central African branches); The third kit contains the main functions of the first two kits, showing specific information on the presence of the monkeypox virus (west and Central African branches) as well as the detection of orpoxvirus.

Thomas Schinek, a Roche executive, said the new test could detect monkeypox and help track its spread. Such diagnostic tools are critical for addressing and ultimately managing emerging public health challenges, as they advance responses such as tracking efforts and treatment strategies.  

The monkeypox virus was first identified in 1958 in a group of monkeys used for research when the animals developed a "pox-like" infection, hence the name. Since May, several non-endemic countries have reported human cases of the monkeypox virus, including the United Kingdom, the United States, Portugal, Spain, and Italy.

Affected by the ever-changing international situation, the supply and prices of international bulk graphene powder are still very uncertain.

Although hydrogen fuel is a promising alternative to fossil fuels, the catalyst it relies on for power generation is mainly composed of rare and expensive metal platinum, which limits the wide commercialization of hydrogen fuel. Researchers at the University of California, Los Angeles reported a way to enable them to meet and exceed the goals set by the U.S. Department of Energy (DOE) for high catalyst performance, high stability, and low platinum utilization.

 

The record-breaking technique uses tiny crystals of platinum-cobalt alloy, each embedded in a nano-bag made of graphene.

 

Compared with the DOE catalyst standard, graphene-coated alloys produced extraordinary results: 75 times higher catalytic activity; 65% higher power; about 20% higher catalytic activity at the end of the fuel cell's expected life; about 35% lower power loss after 7000 hours of simulated use of 6000 ran, exceeding the target of 5000 hours for the first time; and almost 40% less platinum needed per car.

 

Graphene-coated alloys produced extraordinary results: 75 times higher catalytic activity and 65% higher power. At the end of the expected life of the fuel cell, the catalytic activity increased by about 20%, and the power loss was reduced by about 35% after 7000 hours of simulated use, exceeding the target of 5000 hours for the first time.

 

Today, half of the world's total supply of platinum and similar metals is used in catalytic converters for fossil fuel-powered cars, which can reduce the harmfulness of their emissions. Each car needs 2 Mel and 8 grams of platinum. By contrast, current hydrogen fuel cell technology consumes about 36 grams of platinum per vehicle. At the minimum platinum load tested by the research team, only 6.8 grams of platinum were needed for each hydrogen-powered vehicle.

 

So how do researchers get more energy from less platinum? They decomposed the platinum-based catalyst into particles with an average length of 3 nanometers. Smaller particles mean a larger surface area and more room for catalytic activity. However, smaller particles tend to squeeze together to form larger particles.

 

The team solved this limitation by loading their catalyst particles into the 2D material graphene. Compared with the bulk carbon commonly found in coal or pencil lead, this thin carbon layer has amazing capacity, conducts electricity and heat efficiently, and is 100 times stronger than steel of similar thickness.

 

Their platinum-cobalt alloy is reduced to particles. Before being integrated into fuel cells, these particles are surrounded by graphene nano-bags, which also act as an anchor to prevent particle migration, which is necessary for the level of durability required for commercial vehicles. At the same time, graphene allows a tiny gap of about 1 nanometer around each catalyst nanoparticles, which means that critical electrochemical reactions may occur.

 

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Inflationary pressures on Canadians continue to rise. The consumer-price index rose 6.7% in March from a year earlier, the biggest increase since January 1991, according to the latest figures from Statistics Canada.  

On a month-on-month basis, Canada's CPI rose 1.4 percent in March, also accelerating from February's 1.0 percent rise.  

Prices in the eight major sectors covered by the statistics continued to rise. The uptrend comes against the backdrop of continued price pressures in the Canadian housing market, widespread supply chain constraints, and geopolitical conflicts, according to CBC. A variety of factors have affected energy, commodity, and agricultural markets. Meanwhile, Canada's employment picture continued to improve in March, with the unemployment rate falling to a record low and the average hourly earnings of employees rising.  

Excluding gasoline, Canada's CPI rose 5.5 percent year on year in March.  It is also the highest since comparable data began in 1999.  

The widespread supply chain constraints and geopolitical conflicts are expected to continue to affect the prices of the graphene powder.

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