Showing posts with label sequestration. Show all posts
Showing posts with label sequestration. Show all posts

Thursday, September 17, 2020

Convert carbon dioxide into ethylene

 https://phys.org/news/2020-09-effective-pathway-carbon-dioxide-ethylene.html


A research team from Caltech and the UCLA Samueli School of Engineering has demonstrated a promising way to efficiently convert carbon dioxide into ethylene—an important chemical used to produce plastics, solvents, cosmetics and other important products globally.


The scientists developed nanoscale copper wires with specially shaped surfaces to catalyze a chemical reaction that reduces greenhouse gas emissions while generating ethylene—a valuable chemical simultaneously. Computational studies of the reaction show the shaped catalyst favors the production of ethylene over hydrogen or methane. A study detailing the advance was published in Nature Catalysis.


"We are at the brink of fossil fuel exhaustion, coupled with global climate change challenges," said Yu Huang, the study's co-corresponding author, and professor of materials science and engineering at UCLA. "Developing materials that can efficiently turn greenhouse gases into value-added fuels and chemical feedstocks is a critical step to mitigate global warming while turning away from extracting increasingly limited fossil fuels. This integrated experiment and theoretical analysis presents a sustainable path towards carbon dioxide upcycling and utilization."


Currently, ethylene has a global annual production of 158 million tons. Much of that is turned into polyethylene, which is used in plastic packaging. Ethylene is processed from hydrocarbons, such as natural gas.


"The idea of using copper to catalyze this reaction has been around for a long time, but the key is to accelerate the rate so it is fast enough for industrial production," said William A. Goddard III, the study's co-corresponding author and Caltech's Charles and Mary Ferkel Professor of Chemistry, Materials Science, and Applied Physics. "This study shows a solid path towards that mark, with the potential to transform ethylene production into a greener industry using CO2 that would otherwise end up in the atmosphere."


Using copper to kick start the carbon dioxide (CO2) reduction into ethylene reaction (C2H4) has suffered two strikes against it. First, the initial chemical reaction also produced hydrogen and methane—both undesirable in industrial production. Second, previous attempts that resulted in ethylene production did not last long, with conversion efficiency tailing off as the system continued to run.


To overcome these two hurdles, the researchers focused on the design of the copper nanowires with highly active "steps"—similar to a set of stairs arranged at atomic scale. One intriguing finding of this collaborative study is that this step pattern across the nanowires' surfaces remained stable under the reaction conditions, contrary to general belief that these high energy features would smooth out. This is the key to both the system's durability and selectivity in producing ethylene, instead of other end products.


The team demonstrated a carbon dioxide-to-ethylene conversion rate of greater than 70%, much more efficient than previous designs, which yielded at least 10% less under the same conditions. The new system ran for 200 hours, with little change in conversion efficiency, a major advance for copper-based catalysts. In addition, the comprehensive understanding of the structure-function relation illustrated a new perspective to design highly active and durable CO2 reduction catalyst in action.


Huang and Goddard have been frequent collaborators for many years, with Goddard's research group focusing on the theoretical reasons that underpin chemical reactions, while Huang's group has created new materials and conducted experiments. The lead author on the paper is Chungseok Choi, a graduate student in materials science and engineering at UCLA Samueli and a member of Huang's laboratory.

Electrochemical reduction of carbon dioxide to ethanol

Friday, June 12, 2020

Renewable fuel from carbon dioxide with the aid of solar energy



 Recent results have shown that it is possible to use their technique to selectively produce methane, carbon monoxide or formic acid from carbon dioxide and water. The study has been published in ACS Nano.

Wednesday, May 8, 2019

Calgary researchers turn greenhouse gases into carbon fibre

https://globalnews.ca/news/5253283/calgary-researchers-turn-greenhouse-gases-into-carbon-fibre/



Calgary researchers turn greenhouse gases into carbon fibre
A researcher at the University of Calgary says she has developed a method of turning greenhouse gases into valuable carbon nanofibres.
Mina Zarabian came up with the concept while completing her doctorate in chemical and petroleum engineering at the university’s Schulich School of Engineering.
The nanofibres have multiple industrial uses that included replacing metal in cars and airplanes, wind turbines, battery manufacturing and construction.
“This is a process that turns natural gas and CO2, carbon dioxide, both known as greenhouse gases, into solid carbon nanofibres which can be sold in a brick or powder for a lot of industries that utilize them,” Zarabian said during a tour of her lab.
Lines from tanks of carbon dioxide and methane feed into a small chamber the size of a balloon.
Once it’s exposed to extreme heat, black powdery residue appears in a glass tube. A piece of metal in the tube acts as a catalyst.
“It’s the secret sauce of our process,” said Zarabian.
“The good thing is it’s not something very magical or expensive or platinum or some super-fancy expensive metal. It’s a normal metal which can be found anywhere with a high amount of resources.”
Carbon fibres are expensive and currently cost about $100 per kilogram, she said.
Zarabian would like to see the technology eventually installed at natural gas power plants

Wednesday, September 30, 2009

carbon sequestration


I think carbon sequestration is something that we will need to do if we don't want to see all of our coastal cities under water.
( Wiki - carbon sequestration )

The problem is all of the stored hydrocarbon we burned in the past it's going to take almost as much energy to put back.

This week 9/30/09 opens the South African Carbon Capture and Storage (CCS) conference.

CCS technology can help SA reduce emissions
"We cannot neglect any technology that will assist us to address the matters of energy security and climate change" - Republic of South Africa Minister of Energy, Elizabeth Dipuo Peters.
Why is the US not leading this?
Storage must be at depths below 800 m, as the CO2 becomes a super-critical liquid and occupies less space. It is not trapped in a cavernous space, but within porous rock, like a sponge. It is trapped underground by the cap rock, as well as by the capillary action of the ‘sponge' storage rock; and, in the case of deep saline aquifers, it is trapped by dissolving in the water; and, finally it is trapped through a process of calcification as the gas becomes part of the rock - the reaction takes time, but at this stage storage is permanent.

Good stuff.