Literature DB >> 31878543

Using Bessel beams and two-photon absorption to predict radiation effects in microelectronics.

Joel M Hales, Ani Khachatrian, Jeffrey Warner, Stephen Buchner, Adrian Ildefonso, George N Tzintzarov, Delgermaa Nergui, Daniele M Monahan, Stephen D LaLumondiere, John D Cressler, Dale McMorrow.   

Abstract

Pulsed-laser testing is an attractive tool for studying space-based radiation effects in microelectronics because it provides a high degree of spatial resolution and is more cost-effective than conventional accelerator-based testing. However, quantitatively predicting the effects of radiation is challenging for this optical method. A new approach to pulsed-laser testing is presented, which addresses these challenges by using a Bessel beam and carrier generation via two-photon absorption. By producing a carrier distribution in the device under test that is similar to that of a heavy ion, this optical approach aims to quantitatively predict the response of the device under heavy ion tests that represent space radiation. Furthermore, the carrier distribution can be accurately described using a single analytic expression thereby enabling the laser to be tuned to emulate a specific heavy ion. Herein, we describe the modifications made to an existing pulsed-laser setup to generate this carrier distribution, characterize this distribution using a novel method that provides sub-micron spatial resolution, and provide the equations that describe the distribution. Finally, we use this method to study a silicon photodiode and find that the transient response of the device shows strong agreement with the response generated using heavy ions.

Entities:  

Year:  2019        PMID: 31878543     DOI: 10.1364/OE.27.037652

Source DB:  PubMed          Journal:  Opt Express        ISSN: 1094-4087            Impact factor:   3.894


  1 in total

1.  Laser photonic-reduction stamping for graphene-based micro-supercapacitors ultrafast fabrication.

Authors:  Yongjiu Yuan; Lan Jiang; Xin Li; Pei Zuo; Chenyang Xu; Mengyao Tian; Xueqiang Zhang; Sumei Wang; Bing Lu; Changxiang Shao; Bingquan Zhao; Jiatao Zhang; Liangti Qu; Tianhong Cui
Journal:  Nat Commun       Date:  2020-12-03       Impact factor: 14.919

  1 in total

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