日韩福利电影在线_久久精品视频一区二区_亚洲视频资源_欧美日韩在线中文字幕_337p亚洲精品色噜噜狠狠_国产专区综合网_91欧美极品_国产二区在线播放_色欧美日韩亚洲_日本伊人午夜精品

Search

Hydrogen

Monday
09 Dec 2024

Improved Catalyst Turns Harmful Greenhouse Gases Into Cleaner Fuels, Chemical Feedstocks

09 Dec 2024   

A chemical reaction can convert two polluting greenhouse gases into valuable building blocks for cleaner fuels and feedstocks, but the high temperature required for the reaction also deactivates the catalyst. A team led by the Department of Energy’s Oak Ridge National Laboratory has found a way to thwart deactivation. The strategy may apply broadly to other catalysts.

The team improved a reaction called dry reforming of methane that converts methane and carbon dioxide into syngas, a valued mixture of hydrogen and carbon monoxide used by oil and chemical companies worldwide. The team has applied for a patent for their invention as a way to minimize catalytic deactivation.

“Syngas is important because it's a platform for the production of a lot of chemicals of mass consumption,” said ORNL’s Felipe Polo-Garzon, who, with ORNL’s Junyan Zhang, led the study published in Nature Communications.

Improving the catalyst that speeds syngas production could have enormous impact on global energy security, cleaner fuels and chemical feedstocks. In countries lacking oil reserves, syngas derived from coal or natural gas is critical for making diesel and gasoline fuels. Moreover, syngas components can be used to make other commodity chemicals. Hydrogen, for example, can be used as a clean fuel or as a feedstock for ammonia to create fertilizer. Methanol, an alcohol that can be made from syngas, is a source of ingredients for producing plastics, synthetic fabrics and pharmaceuticals. Methanol is also a good carrier of hydrogen, which is hard to pressurize and dangerous to transport. As the simplest alcohol, methanol contains the highest ratio of hydrogen to carbon; it can be safely transported and converted to hydrogen at the destination.

“This [dry reforming of methane] reaction sounds attractive because you are converting two greenhouse gases into a valuable mixture,” Polo-Garzon said. “However, the issue for decades has been that the catalysts required to carry out this reaction deactivate quickly under reaction conditions, making this reaction nonviable on an industrial scale.”

To attain significant conversion of reactants, the reaction must be conducted at temperatures greater than 650 degrees Celsius, or 1,200 degrees Fahrenheit. “At this high temperature, the catalysts undergo two deactivation processes,” Polo-Garzon said. “One is sintering, in which you lose surface sites that undertake the reaction. The other is the formation of coke — basically solid carbon that blocks the catalyst from contacting the reactants.”

Catalysts work by providing a large surface area for reactions. Metal atoms such as nickel have electronic properties that allow them to temporarily bind reactants, making chemical bonds easier to break and create. Sintering causes nickel particles to clump, reducing the surface area available for chemical reactions.

Likewise, coking chokes a catalyst. “During the reaction on the catalyst surface, methane will lose its hydrogen atoms one by one until only its one carbon atom is left,” Zhang said. “If no oxygen bonds to it, leftover carbon will aggregate on the catalyst’s nickel surface, covering its active face. This coking deposition causes deactivation. It is extremely common in thermal catalysis for hydrocarbon conversion.”

Today, most commercial syngas is made by steam reforming of methane, a process that requires large amounts of water and heat and that also produces carbon dioxide. By contrast, dry reforming of methane requires no water and actually consumes carbon dioxide and methane.

By tuning interactions between the metal active sites and the support during catalyst synthesis, the scientists suppressed coke formation and metal sintering. The new catalyst provides outstanding performance for dry reforming of methane with extremely slow deactivation.

We relied on rational design, not trial and error, to make the catalyst better. We're not just developing one catalyst. We are developing design principles to stabilize catalysts for a broad range of industrial processes. For industry, that's important because rather than presenting a dead-end road in which you try something, see how it performs, and then decide where to go from there, we're providing an avenue to move forward.

- Felipe Polo-Garzon, catalytic chemist at ORNL

The novel catalyst consists of a crystalline material called a zeolite that contains silicon, aluminum, oxygen and nickel. The zeolite’s supportive framework stabilizes the metal active sites.

“Zeolite is like sand in composition,” Zhang said. “But unlike sand, it has a sponge-like structure filled with tiny pores, each around 0.6 nanometers in diameter. If you could completely open a zeolite to expose the surface area, 1 gram of sample would contain an area around 500 square meters, which is a tremendous amount of exposed surface.”

To synthesize the zeolite catalyst, the researchers remove some atoms of aluminum and replace them with nickel. “We're effectively creating a strong bond between the nickel and the zeolite host,” Polo-Garzon said. “This strong bond makes our catalyst resistant to degradation at high temperatures.”

The high-performance catalyst was synthesized at ORNL’s Center for Nanophase Materials Sciences. Zili Wu, leader of ORNL’s Surface Chemistry and Catalysis group, served as a strategy advisor for the project.

Zhang performed infrared spectroscopy, revealing that nickel was typically isolated and bound by two silicon atoms in the zeolite framework.

At DOE’s Brookhaven National Laboratory and SLAC National Accelerator Laboratory, ORNL’s Yuanyuan Li led X-ray absorption spectroscopy studies detailing the electronic and bonding structures of nickel in the catalyst. At ORNL, Polo-Garzon and Zhang used a technique called steady-state isotopic transient kinetic analysis to measure catalyst efficiency — the number of times a single active site converts a reactant into a product.

X-ray diffraction and scanning transmission electron microscopy characterized the structure and composition of materials at the nanoscale.

“In the synthesis method, we found that the reason the method works is because we're able to get rid of water, which is a byproduct of the catalyst synthesis,” Polo-Garzon said. “We asked colleagues to use density functional theory to look into why water matters when it comes to the stability of nickel.”

At Vanderbilt University, Haohong Song and De-en Jiang performed computational calculations showing that removing water from the zeolite strengthens its interactions with nickel.

Next, the researchers will develop other catalyst formulations for the dry reforming of methane reaction that are stable under a broad range of conditions. “We're looking for alternative ways to excite the reactant molecules to break thermodynamic constraints,” Polo-Garzon said.

“We relied on rational design, not trial and error, to make the catalyst better,” Polo-Garzon added. “We're not just developing one catalyst. We are developing design principles to stabilize catalysts for a broad range of industrial processes. It requires a fundamental understanding of the implications of synthesis protocols. For industry, that's important because rather than presenting a dead-end road in which you try something, see how it performs, and then decide where to go from there, we're providing an avenue to move forward.”

The DOE Office of Science funded the research. The work relied on several DOE Office of Science user facilities: the CNMS at ORNL; the Center for Functional Nanomaterials and the National Synchrotron Light Source II, both at Brookhaven; the Stanford Synchrotron Radiation Lightsource at SLAC and the National Energy Research Scientific Computing Center at Lawrence Berkeley National Laboratory.

More News

Loading……
91首页免费视频| 在线日韩av| 精品国产一区二区三区久久久樱花| av毛片精品| 丝袜连裤袜欧美激情日韩| 婷婷综合一区| 亚洲精品国产偷自在线观看| 国产精品v亚洲精品v日韩精品| 一区二区日本视频| 青青国产91久久久久久| 久久99精品国产91久久来源| 成人免费视频caoporn| 国产蜜臀av在线一区二区三区| 亚洲日本护士毛茸茸| 日韩欧美在线观看视频| 欧美电影精品一区二区| 诱受h嗯啊巨肉高潮| av基地在线| 高潮一区二区| 日韩av三区| 欧美一区91| 老司机午夜精品| 欧美国产欧美亚州国产日韩mv天天看完整| 亚洲精品老司机| 欧美日韩高清在线播放| 九色在线网站| 黄色漫画在线免费看| 影音先锋欧美激情| 日韩精品中文字幕第1页| 久久综合图片| 中文无字幕一区二区三区 | 国产精品久久久久9999吃药| 午夜亚洲福利老司机| 在线免费观看av电影| 91.xxx.高清在线| 亚洲日本中文| 国产精品地址| 久久亚洲免费视频| 欧美日韩一区二区在线观看视频| 中文字幕校园春色| 8x8ⅹ拨牐拨牐拨牐在线观看| 久久资源综合| 日韩精品视频网站| 中文字幕一区在线观看| 欧美精品乱码久久久久久| 欧美成人免费| 99热这里有精品| 激情六月综合| 久久精品水蜜桃av综合天堂| 欧美日韩成人一区| 秋霞a级毛片在线看| julia中文字幕一区二区99在线| 亚洲狼人精品一区二区三区| 国产亚洲欧美色| 日韩亚洲欧美一区二区三区| 奇米影视888狠狠狠777不卡| 久久精品 人人爱| 99国产精品私拍| 亚洲欧美在线aaa| 免费女人黄页| 2019年精品视频自拍| 亚洲黄网站黄| 一区二区激情小说| 欧美伦理影视网| 国产亚洲成av人片在线观黄桃| 天堂av在线一区| 福利微拍一区二区| 高清av在线| 精品国产视频| 国产欧美综合在线观看第十页| 欧美成人一区二区三区| 性欧美xxx69hd高清| 亚洲美女网站| 精品人伦一区二区三区蜜桃免费| 国产69精品久久app免费版| 欧美aaaaaaaa牛牛影院| 成人午夜电影小说| 精品久久久久99| 免费一级欧美在线观看视频| 久久亚洲欧洲| 欧美网站在线观看| 最新黄网在线观看| 亚洲视频中文| 色悠悠久久综合| 国产高清在线a视频大全| 国产精品v日韩精品v欧美精品网站 | 尤物视频在线看| 亚洲午夜av| 色综合久久精品| 人狥杂交一区欧美二区| 国产精品一区毛片| 欧美主播一区二区三区| 牛牛电影国产一区二区| 狠狠干综合网| 欧美在线你懂的| 日韩三区免费| 成人小视频免费在线观看| 男女爱爱免费网站| 少妇久久久久| 亚洲成av人片一区二区| 自拍亚洲图区| 蜜乳av一区二区| 国产日韩在线| 九九精品久久| 亚洲成人手机在线| 色老太综合网| 97se亚洲国产综合自在线不卡 | 高清成人在线观看| 免费在线黄网| 999久久久精品国产| 亚洲国产成人porn| 在线能看的av网址| 国产高清精品网站| 中文字幕国产在线| 国产精品久久久久9999赢消| 色呦呦国产精品| 久久伊人久久| 国产精品不卡一区二区三区| 日本a级在线| 韩国成人精品a∨在线观看| а√天堂www在线а√天堂视频| 爽成人777777婷婷| 在线成人小视频| 欧美**vk| 欧美男女性生活在线直播观看| 成人动态视频| 日韩欧美精品中文字幕| 在线精品自拍| 午夜精品aaa| ccyy激情综合| 色域天天综合网| 欧美激情久久久久久久久久久| 午夜久久电影网| 欧美专区一区| 欧美性猛交xxxx黑人猛交| 亚洲日本一区二区三区在线| 亚洲午夜精品在线| 久久视频社区| 婷婷亚洲久悠悠色悠在线播放 | 啊啊啊好爽视频| 韩国av一区| 情趣网站视频在线观看| 亚洲欧美日韩视频二区| 在线成年人视频| 日韩不卡一二三区| av中文天堂在线| www.成人网.com| 美女91在线看| 亚洲乱码一区二区三区在线观看| h1515四虎成人| 午夜视频在线观看一区二区| 第四色在线一区二区| 欧美日韩国产综合草草| 99精品在线观看| www 四虎| 久久66热re国产| 99自拍视频在线观看| 26uuu色噜噜精品一区| 第84页国产精品| 精品福利樱桃av导航| 精品av一区二区| 国产bdsm| 国产成人综合在线| 三级在线观看视频| 午夜电影网亚洲视频| 久久99国产精一区二区三区| 色总=综合色| 麻豆91精品视频| av资源新版天堂在线| 亚洲网友自拍偷拍| 日韩久久精品网| 黄污网站在线观看| av不卡免费在线观看| 九七电影院97理论片久久tvb| 欧美性xxxx在线播放| 亚洲国产午夜| 国产在线1区| 伊人色综合久久天天人手人婷| 亚洲动漫精品| 两个人hd高清在线观看| 国产v综合v亚洲欧| 91国产精品| 免费在线播放av| 国产精品原创巨作av| 日本欧美不卡| 91麻豆精品91久久久久久清纯 | 久久精品免费观看| 日韩电影大全网站| 91精品国产麻豆| 极品尤物av久久免费看| 免费成人直播| 欧美一区二区观看视频| 久久 天天综合| 国产一区二区三区黄网站| 日韩欧美激情四射| 国产精品小仙女| 国产精品毛片久久久| 尤物视频在线观看| 亚洲天堂2014| 伊人激情综合|