2009
DOI: 10.1109/tmtt.2008.2008946
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A 1.3-THz Balanced Waveguide HEB Mixer for the APEX Telescope

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Cited by 86 publications
(61 citation statements)
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“…We expect that this effect should significantly decrease the sensitivity of receivers employing HEB mixers, e.g. for frequencies above 1.4 THz where these devices are the heterodyne mixers of choice and where only few balanced mixers were realized to date 29,30 .…”
Section: Discussionmentioning
confidence: 99%
“…We expect that this effect should significantly decrease the sensitivity of receivers employing HEB mixers, e.g. for frequencies above 1.4 THz where these devices are the heterodyne mixers of choice and where only few balanced mixers were realized to date 29,30 .…”
Section: Discussionmentioning
confidence: 99%
“…The group of advanced receiver development of Chalmers University of Technology developed a balance waveguide HEB mixer for the 1.25-1.39 THz band [33]. The mixer mount block consists of two NbN HEB mixer chips and a waveguide 3-dB 90…”
Section: Mixer Mount Designmentioning
confidence: 99%
“…Therefore, we suggest the use of GaN as the material for thin membranes, which has proven to be mechanically robust, inert to most chemicals, and allow for the growth of heterostructure and epitaxial nitrides [11,12]. Furthermore, it has recently been demonstrated that GaN serves also as an excellent buffer-layer for the epitaxial growth of NbN superconducting nanofilms [13,14], which are used in the most sensitive heterodyne receivers above 1.2 THz based on NbN HEB mixers for radio astronomical spectroscopy [15,16]. Alternative buffer-layers or substrates that yield single crystal NbN films are MgO [17,18], SiC [19,20] and sapphire [21], however, the use of sapphire in waveguide applications is restricted due to its hardness and MgO as a thin buffer-layer on Si or lapped quartz substrates is hygroscopic and may lead to life-time issues in the active device.…”
Section: Introductionmentioning
confidence: 99%