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Naranjo B  Gimzewski JK  Putterman S 《Nature》2005,434(7037):1115-1117
While progress in fusion research continues with magnetic and inertial confinement, alternative approaches--such as Coulomb explosions of deuterium clusters and ultrafast laser-plasma interactions--also provide insight into basic processes and technological applications. However, attempts to produce fusion in a room temperature solid-state setting, including 'cold' fusion and 'bubble' fusion, have met with deep scepticism. Here we report that gently heating a pyroelectric crystal in a deuterated atmosphere can generate fusion under desktop conditions. The electrostatic field of the crystal is used to generate and accelerate a deuteron beam (> 100 keV and >4 nA), which, upon striking a deuterated target, produces a neutron flux over 400 times the background level. The presence of neutrons from the reaction D + D --> 3He (820 keV) + n (2.45 MeV) within the target is confirmed by pulse shape analysis and proton recoil spectroscopy. As further evidence for this fusion reaction, we use a novel time-of-flight technique to demonstrate the delayed coincidence between the outgoing alpha-particle and the neutron. Although the reported fusion is not useful in the power-producing sense, we anticipate that the system will find application as a simple palm-sized neutron generator.  相似文献   
2.
Davier  JK 《世界科学》1989,11(1):14-15
对太阳系的探测表明,陨石撞击是行星表面的形成及日后演变的一个重要进程。例如,月亮表面满是陨痕累累的高地及低洼的、布满熔岩的盆地。遍布陨石坑的高地表明,最初的月球外壳及盆地是38亿年以前、月球形成最后阶段中所发生的巨大碰撞的结果。这些盆地是由直径为10~50公里的物体撞击出来的,后来,陨石坑为大熔岩所填充,就成了现在大家所熟知的平坦的玄武岩平原,即月球海。地球表面一定也曾发生过类似的碰撞。这些巨大的碰撞可能是地壳由早先的模样演变成现今海洋和大陆板  相似文献   
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Electronics using hybrid-molecular and mono-molecular devices   总被引:21,自引:0,他引:21  
Joachim C  Gimzewski JK  Aviram A 《Nature》2000,408(6812):541-548
The semiconductor industry has seen a remarkable miniaturization trend, driven by many scientific and technological innovations. But if this trend is to continue, and provide ever faster and cheaper computers, the size of microelectronic circuit components will soon need to reach the scale of atoms or molecules--a goal that will require conceptually new device structures. The idea that a few molecules, or even a single molecule, could be embedded between electrodes and perform the basic functions of digital electronics--rectification, amplification and storage--was first put forward in the mid-1970s. The concept is now realized for individual components, but the economic fabrication of complete circuits at the molecular level remains challenging because of the difficulty of connecting molecules to one another. A possible solution to this problem is 'mono-molecular' electronics, in which a single molecule will integrate the elementary functions and interconnections required for computation.  相似文献   
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