Showing posts with label Daniel Headland. Show all posts
Showing posts with label Daniel Headland. Show all posts

Tuesday, May 11, 2021

Small Silicon Device Splits Terahertz Data Stream

 

Researchers at Osaka University and the University of Adelaide have demonstrated an integrated multiplexer that funnels terahertz data streams in four frequency bands from a waveguide to different points on a silicon slab. [Image: Osaka University]

Edwin Cartlidge

https://www.osa-opn.org/home/newsroom/2021/may/small_silicon_device_splits_terahertz_data_stream/

With frequencies tens or hundreds of times higher than those used by today’s wireless communication networks, terahertz waves offer the potential of exceptionally large bandwidths for data transfer. But making suitable transmitters and other components in this portion of the electromagnetic spectrum has to date proved a huge challenge.

Researchers in Japan and Australia have taken a small step toward realizing the necessary technology by demonstrating a new kind of integrated terahertz multiplexer. They have shown how to separate incoming data into four distinct frequency channels at speeds of several tens of gigabytes per second using a silicon slab several orders of magnitude smaller than those of rival devices (Optica, doi: 10.1364/OPTICA.420715).

Terahertz roadblocks

A major stumbling block in the application of terahertz radiation is its very limited range in air—radiation in this band being readily absorbed by water vapor and oxygen. This problem could potentially be alleviated by using transmitters with suitably high power output and efficiency, but device performances to date have proved disappointing.

One way to try and maximize power is by combining the output from several devices operating at different frequencies. However, direct frequency-division multiplexing of terahertz waves is tricky, with few promising schemes so far. One option is to use free-space optics to gather radiation from a leaky-wave antenna, but the necessary components are bulky. Hollow metallic waveguides can instead be used to make diplexers, but such devices are fairly complicated to build.

A silicon solution

In the latest work, Masayuki Fujita and Daniel Headland of Osaka University, Japan, and colleagues have demonstrated a new kind of scalable photonic multiplexer made from silicon. Typically, such multiplexers involve arrays of waveguides connected to a dielectric slab, but these devices are relatively large—to operate at 300 GHz, they would occupy an area of about 2000 cm2.

Fujita and colleagues instead exploit the phenomenon of optical tunneling to tap radiation from an unclad silicon waveguide. Usually such a waveguide would confine energy within its transverse electric mode and thereby remain insulated from the environment. But when placed close to a dielectric slab, its evanescent fields couple to the slab, causing it to progressively leak terahertz radiation.

The idea is to shape the interface between waveguide and slab such that radiation from all points along the edge meet at the same point within the slab. Since the location of that point varies with frequency, broadband terahertz radiation from the waveguide will fan out across the slab according to frequency. By funneling the waves towards a few specific points on the far side of the slab, the radiation can be split into a number of distinct bands.

Promising data rates

Using computer simulations and deep reactive-ion etching, the researchers designed and built a multiplexer with a curved interface from a piece of silicon with a footprint of just 4 cm2. The waveguide and slab are separated by a tiny air gap that gets smaller and smaller along the curve (to compensate for progressive leaking of radiation), while the funneling is done by carving out four “flares”—each connected to a separate output waveguide.

Fujita and coworkers put their device to the test by exposing it to terahertz waves between 300 GHz and 390 GHz, and then measuring its down-converted output with a spectrum analyzer. They found it successfully split the radiation into four distinct bands with an efficiency and bandwidth “comparable to simulation” (although they say that over-etching shifted the output of each channel upwards by about 10 GHz).

They then investigated whether the multiplexer is suited to its intended application—communication. They did so by using a digital pulse generator to modulate the output of an infrared laser via simple on/off switching, and then transferring that modulation to the terahertz range by recording the laser’s beat frequency. They found that all four channels supported data rates of several gigabits per second, and that a maximum error rate of 1 in 1000 yields an overall capacity of 48 Gbits/s (although they say that this could be improved upon using more sophisticated modulation schemes).

Countering crosstalk

However, this experiment involved testing one channel at a time. The researchers point out that running the channels simultaneously would introduce the problem of crosstalk, and calculate theoretically a signal-to-interference ratio of 10–20 dB. Being “likely to adversely impact the quality of communications links,” they say that this problem must be countered by better isolating the multiplexer—which, they suggest, could be done by using special filters or changing the spacing between channels.

What’s more, the experiment was limited by the fact that the multiplexer was connected to both source and detector by waveguides—not via free space. Fujita and colleagues say that this shortcoming could be removed in future demonstrations by connecting advanced antennas to the device, noting that “achievable data rates will be affected in such a wireless communications link, owing to the atmospheric absorption of terahertz waves.”

Fujita adds that being able to integrate active devices including sources, detectors and modulators, as well as the packaging technology, will be a “very important” next step in the development of compact practical terahertz systems.

Wednesday, December 26, 2018

Abstract-Terahertz multi-beam antenna using photonic crystal waveguide and Luneburg lens


Publisher Logo

Daniel Headland,  Withawat Withayachumnankul, Ryoumei Yamada, Masayuki Fujita,  Tadao Nagatsuma,
Luneburg lens concept, showing the reciprocal principle of operation that relates a point on the circumference to a plane wave on the opposite side. It is noted that this behavior is represented with a ray-tracing diagram, but in practice, the lens must be significantly larger than a wavelength for this to be truly valid.


https://aip.scitation.org/doi/abs/10.1063/1.5060631

Recent years have seen the emergence of efficient, general-purpose terahertz photonic-crystal waveguides etched from high-resistivity silicon. Systems founded upon this platform will require antennas in order to interface with free-space fields. Multi-beam antennas are desirable to this end, as they are capable of interacting with a number of distinct directions simultaneously. Such functionality can be provided by Luneburg lenses, which we aim to incorporate with the terahertz photonic crystal waveguide. A Luneburg lens requires a precisely defined gradient-index, which we realize using effective medium techniques that are implemented with micro-scale etching of silicon. Thus, the photonic crystal waveguides can be integrated directly with the Luneburg lens and fabricated together from the same silicon wafer. In this way, we develop a planar Luneburg-lens antenna with a diameter of 17 mm and seven evenly spaced ports that cover a 120° field of view. Numerical and experimental characterization confirm that the antenna functions as intended over its operation bandwidth, which spans from 320 to 390 GHz. The Luneburg-lens antenna is subsequently deployed in a demonstration of terahertz communications over a short distance. The device may therefore find applications in terahertz communications, where multiple point-to-point links can be sustained by a given transceiver node. This form of terahertz beam control may also be useful for short-range radar that monitors several directions simultaneously.

Tuesday, December 4, 2018

Abstract-Tutorial: Terahertz beamforming, from concepts to realizations



Daniel Headland, Yasuaki Monnai, Derek Abbott, Christophe Fumeaux, Withawat Withayachumnankul,

https://aip.scitation.org/doi/am-pdf/10.1063/1.5011063?class=chorus+notVisible

The terahertz range possesses significant untapped potential for applications including high-volume wireless communications, noninvasive medical imaging, sensing, and safe security screening. However, due to the unique characteristics and constraints of terahertz waves, the vast majority of these applications are entirely dependent upon the availability of beam control techniques. Thus, the development of advanced terahertzrange beam control techniques yields a range of useful and unparalleled applications. This article provides an overview and tutorial on terahertz beam control. The underlying principles of wavefront engineering include array antenna theory and diffraction optics, which are drawn from the neighboring microwave and optical regimes, respectively. As both principles are applicable across the electromagnetic spectrum, they are reconciled in this overview. This provides a useful foundation for investigations into beam control in the terahertz range, which lies between microwaves and infrared light. Thereafter, noteworthy experimental demonstrations of beam control in the terahertz range are discussed, and these include geometric optics, phased array devices, leaky-wave antennas, reflectarrays, and transmitarrays. These techniques are compared and contrasted for their suitability in applications of terahertz waves. 

Monday, January 1, 2018

Abstract-Broadband Terahertz Circular-Polarization Beam Splitter


Wendy S. L. Lee, Shruti Nirantar, Daniel Headland, Madhu Bhaskaran, Sharath Sriram, Christophe Fumeaux, Withawat Withayachu

http://onlinelibrary.wiley.com/doi/10.1002/adom.201700852/full

Splitting circularly polarized waves is desirable for high-data-rate wireless communications and study of molecular chirality at terahertz frequencies. Typically, this functionality is achieved using bulk optical systems with limitations in material availability, bandwidth, and efficiency. As an alternative, metasurfaces with spatially varying broadband birefringence are employed to attain the same functionality. It is demonstrated that a metasurface designed with gradually rotated birefringent resonators can deflect normally incident left-handed circularly polarized and right-handed circularly polarized waves into different directions. This beam splitting functionality is maintained over an experimentally demonstrated relative deflection bandwidth of 53%, namely, covering the band of 0.58–1.00 THz.

Wednesday, August 16, 2017

Abstract-Demonstration of a highly efficient terahertz flat lens employing tri-layer metasurfaces



Chun-Chieh Chang, Daniel Headland, Derek Abbott, Withawat Withayachumnankul, and Hou-Tong Chen

https://www.osapublishing.org/ol/abstract.cfm?uri=ol-42-9-1867&origin=search

We demonstrate a terahertz flat lens based on tri-layer metasurfaces allowing for broadband linear polarization conversion, where the phase can be tuned through a full 2π range by tailoring the geometry of the subwavelength resonators. The lens functionality is realized by arranging these resonators to create a parabolic spatial phase profile. The fabricated 124-μm-thick device is characterized by scanning the beam profile and cross section, showing diffraction-limited focusing and 68% overall efficiency at the operating frequency of 400 GHz. This device has potential for applications in terahertz imaging and communications, as well as beam control in general.
© 2017 Optical Society of America

Saturday, July 23, 2016

Abstract-Analysis of 3D-printed metal for rapid-prototyped reflective terahertz optics




Daniel Headland, Withawat Withayachumnankul, Michael Webb, Heike Ebendorff-Heidepriem, Andre Luiten, and Derek Abbott
https://www.osapublishing.org/oe/abstract.cfm?uri=oe-24-15-17384

We explore the potential of 3D metal printing to realize complex conductive terahertz devices. Factors impacting performance such as printing resolution, surface roughness, oxidation, and material loss are investigated via analytical, numerical, and experimental approaches. The high degree of control offered by a 3D-printed topology is exploited to realize a zone plate operating at 530 GHz. Reflection efficiency at this frequency is found to be over 90%. The high-performance of this preliminary device suggest that 3D metal printing can play a strong role in guided-wave and general beam control devices in the terahertz range.
© 2016 Optical Society of America
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Saturday, May 21, 2016

Abstract-Dielectric Resonator Reflectarray as High-Efficiency Nonuniform Terahertz Metasurface



 School of Electrical and Electronic Engineering, The University of Adelaide, Adelaide, SA 5005, Australia
 École Polytechnique Fédérale de Lausanne, EPFL, 1015 Lausanne, Switzerland
 Foundation for Research on Information Technologies in Society, IT’IS, 8004 Zürich, Switzerland
§Functional Materials and Microsystems Research Group and MicroNano Research Facility, RMIT University, Melbourne, Victoria 3000, Australia
 Interdisciplinary Graduate School of Science and Engineering, Tokyo Institute of Technology, Ookayama, Meguro-ku, Tokyo 152-8550, Japan
ACS Photonics, Article ASAP
DOI: 10.1021/acsphotonics.6b00102
Publication Date (Web): May 13, 2016
Copyright © 2016 American Chemical Society


Advances in terahertz technology rely on the combination of novel materials and designs. As new devices are demonstrated to address the terahertz gap, the ability to perform high-efficiency beam control will be integral to making terahertz radiation a practical technology. Here, we use a metasurface composed of nonuniform dielectric resonator antennas on a ground plane to achieve efficient beam focusing at 1 THz. The dielectric resonators are made of high-resistivity silicon, which is a low-loss, nondispersive material for terahertz waves. The resonators operate around the resonance of the displacement current in the silicon, which is crucial to attaining high efficiency. The reflectarray’s capacity to focus terahertz radiation is experimentally verified, and hence by the principle of antenna reciprocity, it can also be employed as a terahertz collimator. The demonstrated device can therefore be deployed for high-gain terahertz antennas. Further measurements show that the loss of the reflectarray is negligible, which confirms the high efficiency of the dielectric resonators. This finding will enable the design of efficient flat-profile terahertz reflectarrays and metasurfaces to serve arbitrary beam control requirements in the near and far fields.

Monday, May 16, 2016

Abstract-Analysis of 3D-printed metal for rapid-prototyped reflective terahertz optics



We explore the potential of 3D metal printing to realize complex conductive terahertz devices. Factors impacting performance such as printing resolution, surface roughness, oxidation, and material loss are investigated via analytical, numerical, and experimental approaches. The high degree of control offered by a 3D-printed topology is exploited to realize a zone plate operating at 530 GHz. Reflection efficiency at this frequency is found to be over 90%. The high-performance of this preliminary device suggest that 3D metal printing can play a strong role in guided-wave and general beam control devices in the terahertz range.

Saturday, May 14, 2016

Abstract-Dielectric resonator reflectarray as high-efficiency non-uniform terahertz metasurface



ACS Photonics, Just Accepted Manuscript
DOI: 10.1021/acsphotonics.6b00102
Publication Date (Web): May 13, 2016
Copyright © 2016 American Chemical Society

Abstract

Advances in terahertz technology rely on the combination of novel materials and designs. As new devices are demonstrated to address the terahertz gap, the ability to perform high-efficiency beam control will be integral to making terahertz a practical technology. Here, we use a metasurface composed of nonuniform dielectric resonator antennas on a ground plane to achieve efficient beam focusing at 1 THz. The dielectric resonators are made of high-resistivity silicon, which is a low-loss, non-dispersive material for terahertz waves. The resonators operate around the resonance of displacement current in the silicon, which is crucial to attaining high-efficiency. The reflectarray’s capacity to focus terahertz radiation is experimentally verified, and hence by the principle of antenna reciprocity, it can also be employed as a terahertz collimator. The demonstrated device can therefore be deployed for high-gain terahertz antennas. Further measurements show that the loss of the reflectarray is negligible, which confirms the high efficiency of the dielectric resonators. This finding will enable the design of efficient flat-profile terahertz reflectarrays and metasurfaces to serve arbitrary beam control requirements in the near- and far-field.

Monday, October 12, 2015

Abstract-Terahertz Magnetic Mirror Realized with Dielectric Resonator Antennas



  1. Daniel Headland1
  2. Shruti Nirantar2,3,
  3. Withawat Withayachumnankul1,2,4
  4. Philipp Gutruf2,3
  5. Derek Abbott1
  6. Madhu Bhaskaran2,3
  7. Christophe Fumeaux1,*and
  8. Sharath Sriram2,3,*
Article first published online: 9 OCT 2015
DOI: 10.1002/adma.201503069
http://onlinelibrary.wiley.com/doi/10.1002/adma.201503069/abstract;jsessionid=5E1D330CB11C192A553C5E4A3AC815B7.f04t02?userIsAuthenticated=false&deniedAccessCustomisedMessage=

Single-crystal silicon is bonded to a metal-coated substrate and etched in order to form an array of microcylinder passive terahertz dielectric resonator antennas (DRAs). The DRAs exhibit a magnetic response, and hence the array behaves as an efficient artificial magnetic conductor (AMC), with potential for terahertz antenna and sensing applications.

Thursday, July 23, 2015

Abstract-Polarization-dependent thin-film wire-grid reflectarray for terahertz waves




thin-film polarization-dependent reflectarray based on patterned metallic wire grids is realized at 1 THz. Unlike conventional reflectarrays with resonant elements and a solid metal ground, parallel narrow metal strips with uniform spacing are employed in this design to construct both the radiation elements and the ground plane. For each radiation element, a certain number of thin strips with an identical length are grouped to effectively form a patch resonator with equivalent performance. The ground plane is made of continuous metallic strips, similar to conventional wire-grid polarizers. The structure can deflect incident waves with the polarizationparallel to the strips into a designed direction and transmit the orthogonal polarizationcomponent. Measured radiation patterns show reasonable deflection efficiency and highpolarization discrimination. Utilizing this flexible device approach, similar reflectarray designs can be realized for conformal mounting onto surfaces of cylindrical or spherical devices for terahertz imaging and communications.

Saturday, May 16, 2015

Abstract-Doped polymer for low-loss dielectric material in the terahertz range



Daniel Headland, Peter Thurgood, Daniel Stavrevski, Withawat Withayachumnankul, Derek Abbott, Madhu Bhaskaran, and Sharath Sriram
https://www.osapublishing.org/ome/abstract.cfm?uri=ome-5-6-1373

The dielectric properties of an elastomeric polymer are modified with the inclusion of dopants, with the aim of reducing dielectric loss in the terahertz range. Polydimethylsiloxane (PDMS) is selected as the host polymer, and micro/nano-particle powders of either alumina or polytetrafluoroethylene (PTFE) are employed as dopants. Composite samples are prepared, and characterised with terahertz time-domain spectroscopy (THz-TDS). The samples exhibit significantly reduced dielectric loss, with a maximum reduction of 15.3% in loss tangent reported for a sample that is 40% PTFE by mass. Results are found to have reasonable agreement with the Lichtenecker logarithmic mixture formula, and any deviation can be accounted for by agglomeration of dopant micro/nano-particles. The new dielectric composites are promising for devising efficient micro-structure components at terahertz frequencies.
© 2015 Optical Society of America
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