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61.
王洪宇 《电子工业专用设备》2010,39(8):49-51
低温共烧陶瓷技术(Low Temperature Co-fired Ceramic LTCC)是近年来兴起的一种相当令人瞩目的多学科交叉的整合组件技术,广泛用于基板、封装及微波器件等领域。主要介绍当前广泛用于检测混合电路板、LTCC陶瓷基板、PCB裸板故障的飞针测试设备在陶瓷基片测试中的工艺研究。 相似文献
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We propose the S-shaped vertical probes with branch springs for the wafer-level testing of IC chips. The conventional S-shaped vertical probe requires a guide structure to prevent buckling due to the large overdrive actuation involved. However, the guide structure not only increases the cost of fabrication, but it also requires a troublesome assembly procedure. In this paper, we present the S-shaped vertical probe with branch springs on the left and right sides of the main spring to prevent buckling. This probe was designed using finite-element methods and fabricated using Ni-Co electroplating. The performances of the probe for the wafer-level testing of IC chips were measured with the probe test equipments. Compared to the identical conventional S-shaped probe, the proposed probe has the overdrive (60 μm) that is 1.2 times larger and the contact force (25 mN) that is 2.5 times larger. This new S-shaped vertical probe satisfies the design requirements for a vertical probe without the guide structure and has the potential for use as a cost-effective guide-free probe card for the wafer-level testing of IC chips. 相似文献
64.
分析了ARM-Linux下ⅡC总线及其设备驱动的层次结构,指出了ⅡC设备添加与驱动实现的途径,详细阐述了如何采用通用i2c-dev.c驱动常规ⅡC设备、如何编写特定ⅡC设备的probe方式驱动、怎样设计动态加载的简易ⅡC"客服-驱动"、怎样使用GPIO模拟ⅡC总线快速驱动设备等常用具体实现过程和关键环节,并说明了这些方法的优势和不足。 相似文献
65.
重点讨论了飞针在线测试技术在电子模块测试中的测试与实现。介绍了飞针测试原理,阐述了电子模块飞针测试的流程以及测试中电子模块,提出了短路测试中出现的问题的解决办法,以及NOD文件的快速修改技巧,并且详细说明了飞针和针床的互补关系。飞针测试技术的使用能准确定位故障点,缩短调试周期,对批量生产的电子模块调试有重要作用。 相似文献
66.
Acoustic Detection: Acoustic Detection of Phase Transitions at the Nanoscale (Adv. Funct. Mater. 4/2016) 下载免费PDF全文
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68.
一种新型的STM探针 总被引:2,自引:0,他引:2
以普通的石英光纤为材料,用熔拉腐蚀复合的方法制备出nm量级的光纤探针,而后在针尖表面镀上数十nm厚的金属膜,达到导电性,使其能传导隧道电流,从而研制出一种新型的扫描隧道显微镜(STM)光纤隧道探针,在STM上取得了比较理想的实验结果。本文将光纤隧道探针与金属隧道探针作了比较,并对其性能作了分析。 相似文献
69.
In this work, an aqueous acidic thin‐layer‐based strategy for fabricating nanostructures on silicon by using atomic force microscopy (AFM) nanolithography is presented. The approach involves the formation of microscale droplets via dilute hydrofluoride (DHF) etching, the conversion of the droplets to acidic thin layers by AFM‐probe scanning, and subsequent lithographic operations using a biased probe in the aqueous layers. By varying the concentration of the acidic DHF layers, the thin layers can facilitate the creation of both positive and negative patterns, such as oxide dots and Si pores, through anodic oxidation and dissolution. In particular, the anodic oxidation in the acidic media is associated with the field‐enhanced nonequilibrium dissociation of the weak electrolyte. The Si pore structure formation is related to the field‐assisted dissolution of anodic oxides and the Si substrate. The acidic‐layer‐based technique allows switching between different lithographic modes by changing the acidity of the DHF layers, and is complementary to bulk solution‐based and local meniscus‐based approaches in AFM nanolithography. In principle, this method can also be extended to other materials that have similar reactions with DHF. 相似文献
70.
Yogesh Sharma Radhe Agarwal Liam Collins Qiang Zheng Anton V. Ievlev Raphael P. Hermann Valentino R. Cooper Santosh KC Ilia N. Ivanov Ram S. Katiyar Sergei V. Kalinin Ho Nyung Lee Seungbum Hong Thomas Z. Ward 《Advanced functional materials》2020,30(3)
Multiferroic materials have driven significant research interest due to their promising technological potential. Developing new room‐temperature multiferroics and understanding their fundamental properties are important to reveal unanticipated physical phenomena and potential applications. Here, a new room temperature multiferroic nanocomposite comprised of an ordered ferrimagnetic spinel α‐LiFe5O8 (LFO) and a ferroelectric perovskite BiFeO3 (BFO) is presented. It is observed that lithium (Li)‐doping in BFO favors the formation of LFO spinel as a secondary phase during the synthesis of LixBi1?xFeO3 ceramics. Multimodal functional and chemical imaging methods are used to map the relationship between doping‐induced phase separation and local ferroic properties in both the BFO‐LFO composite ceramics and self‐assembled nanocomposite thin films. The energetics of phase separation in Li doped BFO and the formation of BFO‐LFO composites are supported by first principles calculations. These findings shed light on Li's role in the formation of a functionally important room temperature multiferroic and open a new approach in the synthesis of light element doped nanocomposites for future energy, sensing, and memory applications. 相似文献