24小时热门版块排行榜    

查看: 301  |  回复: 2
当前主题已经存档。

singlecry

木虫 (小有名气)

[交流] Hollow Nanocrystals and How to Mass Produce Them

Recently Yadong Yin and his colleagues in Paul Alivisatos's laboratory were experimenting with ways to modify the surfaces of nanocrystals — particles only a few billionths of a meter in size, comprised of only a few thousand atoms. After exposing cobalt nanocrystals to sulfur, they examined the results under a transmission electron microscope.
What they saw came as a surprise: the myriad solid crystals had all turned into hollow spheres.
Transmission electron microscope images track the formation of hollow nanocrystals.  
Alivisatos is director of Berkeley Lab's Materials Sciences Division and a professor of chemistry at the University of California at Berkeley. His laboratory, in which Yin is a postdoctoral fellow, has been the source of numerous discoveries and inventions on the nanoscale. But while the mass production of nanoscale hollow spheres would be an exciting addition to the repertoire, it presented a puzzle.
"After we talked about what we'd observed, we decided that a process called the Kirkendall effect was responsible for the hollowing out of the spheres," says Yin.
The Kirkendall effect. At the boundary between two solids diffusing into each other at different rates, for example zinc and copper, their alloy (brass) grows in the direction of the faster-moving species (zinc). Unfilled voids are left behind and coalesce into large pores. (After Preston Huey, Science)
  Discovered in 1942, the Kirkendall effect describes what happens when two solids diffuse into each other at different rates. The boundary between two metals, zinc and copper for example, is formed by a growing layer of alloy — brass, in this case — which expands in the direction of the faster-moving species, zinc.
This was the clue to Ernest Kirkendall's discovery that the atoms of the two solids don't change places directly; rather diffusion occurs where voids open, making room for atoms to move in. In the wake of the faster-moving material, large pores or cavities form as unfilled voids coalesce.
"Most of the time, people don't like this," says Yin. "It can be a big problem in welding, for example. But we saw the possibilities."
Yin and his colleagues realized that in a sulfide-coated cobalt nanocrystal, cobalt atoms rapidly move outward, leaving voids behind, while sulfur atoms move sluggishly inward. A rind of cobalt sulfide forms as they mix. Meanwhile the inner voids coalesce. Once all the cobalt has diffused into the sulfide, what's left is an empty sphere.
"We have lots of practice with cobalt nanoparticles, so we used cobalt to demonstrate the effect," says Yin. "We made hollow nanospheres of cobalt oxide, cobalt sulfide, and cobalt selenide." Then, to show that the process worked for metals generally, they also made hollow nanospheres of iron oxide and cadmium sulfide. "It gave us the confidence to say we could make hollow nanocrystals with many different materials."
On the nanoscale, the Kirkendall effect explains why a fast-diffusing cobalt nanocrystal leaves a hollow center behind as it moves into a surrounding sulfide-compound shell. (After Preston Huey, Science)
  The nanospheres were remarkably uniform: depending on the proportions of the starting materials, their hollow centers were 40 to 70 percent as big as the initial crystal, but hole size varied no more than 13 percent in any given batch. This uniformity and versatility suggested a wide range of applications including drug delivery systems, optics, electronics, and selective chemical reactors, all on the nanoscale.
To demonstrate the possibilities, Yin and his colleagues in Alivisatos's laboratory consulted their neighbors in Gabor Somorjai's laboratory. Somorjai, also a member of the Lab's Materials Sciences Division and the UC Berkeley Chemistry Department, is an international authority on catalysis who has experimented with arrays of nanocrystals on surfaces.
Somorjai encouraged the researchers to isolate catalyst particles, such as platinum nanocrystals, inside their hollow shells. Compared to catalysts on open surfaces or in the channels of porous structures, catalysts confined in this way could reduce secondary reactions and deliver just the desired reaction products in the desired amounts.
   To enclose catalytic platinum nanocrystals inside a solid shell, the researchers begin with platinum seeds (left), then coat them with cobalt which, when oxidized, evolves into hollow nanocrystals.
  "At first I thought it would be impossible," says Yin, "but then we saw how we could do it." The synthesis began with platinum nanocrystals, or "seeds." Cobalt was added to form structures with platinum cores and cobalt shells.
Now the outer cobalt shells were oxidized, launching the familiar Kirkendall-like process: the cobalt diffused rapidly outward, the oxygen slowly inward, forming hollow spheres of cobalt oxide with platinum seeds rattling around in their centers.
SCIENCE ARTICLE ENTRY:Read "Formation of hollow nanocrystals through the nanoscale Kirkendall effect," by Yadong Yin, Robert M. Rioux, Can K. Erdonmez, Steven Hughes, Gabor A. Somorjai, and A. Paul Alivisatos in Science, 30 April 2004 (pdf file).
回复此楼
已阅   回复此楼   关注TA 给TA发消息 送TA红花 TA的回帖

lingyun79

木虫 (著名写手)

不错,顶一下
2楼2007-12-11 00:46:44
已阅   回复此楼   关注TA 给TA发消息 送TA红花 TA的回帖
相关版块跳转 我要订阅楼主 singlecry 的主题更新
普通表情 高级回复 (可上传附件)
最具人气热帖推荐 [查看全部] 作者 回/看 最后发表
[基金申请] 为什么网上很多人说本周 12号出结果 +4 瞬息宇宙 2026-08-10 4/200 2026-08-11 02:02 by 旁观2020
[基金申请] 基金中了 +15 laoda193707 2026-08-06 15/750 2026-08-11 00:11 by jiafei2190
[基金申请] FileCode能看出啥? +7 要乐观耀哥 2026-08-10 15/750 2026-08-10 19:29 by 要乐观耀哥
[基金申请] filecode +8 documentary 2026-08-10 8/400 2026-08-10 19:20 by loufangrui
[基金申请] 综述论文作为代表作会不会影响评审专家的印象分? +10 yufeiwaner 2026-08-09 11/550 2026-08-10 18:47 by yufeiwaner
[基金申请] 静等基金结果 +5 gjjjzhong 2026-08-10 16/800 2026-08-10 17:19 by Tide man
[基金申请] 我的国基提前知道中了,可是同事的操作让我实在接受不了,怎么会有这样的人 +8 家与远方 2026-08-10 11/550 2026-08-10 17:09 by 六两废铜
[基金申请] 关于Filecode分析方法 +3 majunge000 2026-08-10 3/150 2026-08-10 15:46 by lch2012
[基金申请] 国自然结果 +4 Vierhys 2026-08-10 8/400 2026-08-10 15:06 by Vierhys
[基金申请] 奇怪,两个人的filecode固定段从头到尾一模一样 +4 布布和一二 2026-08-10 4/200 2026-08-10 14:50 by 医学老男孩
[基金申请] 2026国自然放榜时间 +9 布布和一二 2026-08-08 9/450 2026-08-10 11:22 by xxxx2020
[基金申请] 这样的filecode谁见过 +11 布布和一二 2026-08-08 22/1100 2026-08-10 11:10 by wmfsnow
[基金申请] filecode与中标关系的预测 +5 布布和一二 2026-08-07 5/250 2026-08-09 16:15 by 袁向阳007
[基金申请] 关于filecode,很负责任的告诉大家 +6 爱看书的可乐 2026-08-08 7/350 2026-08-08 22:13 by a_niu
[基金申请] 关于豆爷回答的JTJC与%2F数量 +5 yang182083 2026-08-06 7/350 2026-08-08 18:29 by zhanghaozhu
[基金申请] 国基金的申报应该改成非等额制,评价高的钱多评价低的钱少,但是增加资助率 +7 a089 2026-08-07 7/350 2026-08-08 18:05 by gltch
[基金申请] 关于filecode +4 布布和一二 2026-08-07 7/350 2026-08-07 22:55 by zhanghaozhu
[基金申请] 化学口download_prp&fileCode的固定段好像这几天一直没变,有变的大神么? +3 Tide man 2026-08-07 4/200 2026-08-07 22:39 by Tide man
[基金申请] filecode变化情况 +6 布布和一二 2026-08-07 22/1100 2026-08-07 14:45 by 且听虎啸
[基金申请] 影响面上的因素 +8 布布和一二 2026-08-05 11/550 2026-08-06 10:41 by 宝贝虫子
信息提示
请填处理意见