Showing posts with label multiplexer. Show all posts
Showing posts with label multiplexer. Show all posts

Monday, October 28, 2019

Abstract-A 240 GHz Active Multiplier-Based Signal Source for Millimeter-Wave/Terahertz Applications


M. Hossain, S. Boppel, W. Heinrich, and V. Krozer

https://www.fbh-berlin.de/publikationen-patente/publikationen/title/a-240-ghz-active-multiplier-based-signal-source-for-millimeter-waveterahertz-applications

This paper presents a 240 GHz signal source using a 0.8 µm transferred substrate (TS) InP-HBT technology. The source is based on an active tripler and delivers -3 dBm peak output power at 234 GHz, with a DC consumption of only 50 mW, which corresponds to 0.9% conversion efficiency. A bandpass filter at the output suppresses all the unwanted harmonics. The tripler achieves more than 50 GHz bandwidth and exhibits very low unwanted harmonics. The core area of the source is only 1.3 × 0.7 mm2.

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Monday, October 30, 2017

Abstract-Massive MIMO Performance Comparison of Beamforming and Multiplexing in the Terahertz Band



In this paper, we compare the performance of two main MIMO techniques, beamforming and multiplexing, in the Terahertz (THz) band. The main problem with the THz band is its huge propagation loss, which is caused by the tremendous signal attenuation due to molecule absorption of the electro-magnetic wave. To overcome the path loss issue, massive MIMO has been suggested to be employed in the network and is expected to provide Tbps for a distance within a few meters. In this context, beamforming is studied recently as the main technique to take advantage of MIMO in THz and overcome the very high path loss with the assumption that the THz communication channel is Line-of-Sight (LoS) and there are not significant multipath rays. On the other hand, recent studies also showed that the well-known absorbed energy by molecules can be re-radiated immediately in the same frequency. Such re-radiated signal is correlated with the main signal and can provide rich scattering paths for the communication channel. This means that a significant MIMO multiplexing gain can be achieved even in a LoS scenario for the THz band. Our simulation results reveal a surprising observation that the MIMO multiplexing could be a better choice than the MIMO beamforming under certain conditions in THz communications.

Friday, August 11, 2017

Scientists report first data transmission through terahertz multiplexer




https://news.brown.edu/articles/2017/08/multiplexer

Kevin Stacey   
Researchers have demonstrated the transmission of two separate video signals through a terahertz multiplexer at a data rate more than 100 times faster than today’s fastest cellular data networks.
PROVIDENCE, R.I. [Brown University] — Multiplexing, the ability to send multiple signals through a single channel, is a fundamental feature of any voice or data communication system. An international research team has demonstrated for the first time a method for multiplexing data carried on terahertz waves, high-frequency radiation that may enable the next generation of ultra-high bandwidth wireless networks.
In the journal Nature Communications, the researchers report the transmission of two real-time video signals through a terahertz multiplexer at an aggregate data rate of 50 gigabits per second, approximately 100 times the optimal data rate of today’s fastest cellular network.
“We showed that we can transmit separate data streams on terahertz waves at very high speeds and with very low error rates,” said Daniel Mittleman, a professor in Brown’s School of Engineering and the paper’s corresponding author. “This is the first time anybody has characterized a terahertz multiplexing system using actual data, and our results show that our approach could be viable in future terahertz wireless networks.”
Current voice and data networks use microwaves to carry signals wirelessly. But the demand for data transmission is quickly becoming more than microwave networks can handle. Terahertz waves have higher frequencies than microwaves and therefore a much larger capacity to carry data. However, scientists have only just begun experimenting with terahertz frequencies, and many of the basic components necessary for terahertz communication don’t exist yet.
A system for multiplexing and demultiplexing (also known as mux/demux) is one of those basic components. It’s the technology that allows one cable to carry multiple TV channels or hundreds of users to access a wireless Wi-Fi network.
The mux/demux approach Mittleman and his colleagues developed uses two metal plates placed parallel to each other to form a waveguide. One of the plates has a slit cut into it. When terahertz waves travel through the waveguide, some of the radiation leaks out of the slit. The angle at which radiation beams escape is dependent upon the frequency of the wave.
“We can put several waves at several different frequencies — each of them carrying a data stream — into the waveguide, and they won’t interfere with each other because they’re different frequencies; that’s multiplexing,” Mittleman said. “Each of those frequencies leaks out of the slit at a different angle, separating the data streams; that’s demultiplexing.”
Because of the nature of terahertz waves, signals in terahertz communications networks will propagate as directional beams, not omnidirectional broadcasts like in existing wireless systems. This directional relationship between propagation angle and frequency is the key to enabling mux/demux in terahertz systems. A user at a particular location (and therefore at a particular angle from the multiplexing system) will communicate on a particular frequency.
In 2015, Mittleman’s lab first published a paper describing their waveguide concept. For that initial work, the team used a broadband terahertz light source to confirm that different frequencies did indeed emerge from the device at different angles.
While that was an effective proof of concept, Mittleman said, this latest work took the critical step of testing the device with real data.
Working with Guillaume Ducournau at Institut d’Electronique de Microélectronique et de Nanotechnologie, CNRS/University of Lille, in France, the researchers encoded two high-definition television broadcasts onto terahertz waves of two different frequencies: 264.7 GHz and 322.5 GHz. They then beamed both frequencies together into the multiplexer system, with a television receiver set to detect the signals as they emerged from the device. When the researchers aligned their receiver to the angle from which 264.7 GHz waves were emitted, they saw the first channel. When they aligned with 322.5 GHz, they saw the second.

Further experiments showed that transmissions were error-free up to 10 gigabits per second, which is much faster than today’s standard Wi-Fi speeds. Error rates increased somewhat when the speed was boosted to 50 gigabits per second (25 gigabits per channel), but were still well within the range that can be fixed using forward error correction, which is commonly used in today’s communications networks.
In addition to demonstrating that the device worked, Mittleman says the research revealed some surprising details about transmitting data on terahertz waves. When a terahertz wave is modulated to encode data — meaning turned on and off to make zeros and ones — the main wave is accompanied by sideband frequencies that also must be detected by a receiver in order to transmit all the data. The research showed that the angle of the detector with respect to the sidebands is important to keeping the error rate down.
“If the angle is a little off, we might be detecting the full power of the signal, but we’re receiving one sideband a little better than the other, which increases the error rate.” Mittleman explained. “So it’s important to have the angle right.”
Fundamental details like that will be critical, Mittleman said, when it comes time to start designing the architecture for complete terahertz data systems. “It’s something we didn’t expect, and it shows how important it is to characterize these systems using data rather than just an unmodulated radiation source.”
The researchers plan to continue developing this and other terahertz components. Mittleman recently received a license from the FCC to perform outdoor tests at terahertz frequencies on the Brown University campus (see sidebar).
“We think that we have the highest-frequency license currently issued by the FCC, and we hope it’s a sign that the agency is starting to think seriously about terahertz communication,” Mittleman said. “Companies are going to be reluctant to develop terahertz technologies until there’s a serious effort by regulators to allocate frequency bands for specific uses, so this is a step in the right direction.”
This work was supported by the U.S. National Science Foundation, the U.S. Army Research Office, the W.M. Keck Foundation and France’s Agence Nationale de la Recherche under the COM’TONIQ and TERALINKS research grants and in the framework of the CPER “Photonics for Society” developed within the Hauts-de-France region.

Monday, September 14, 2015

Researchers develop key component for terahertz wireless




All communications networks need some form of multiplexing -- the ability to send multiple data streams through a single medium. Researchers from Brown have used a leaky wave antenna to separate terahertz waves by frequency. The work provides a viable multiplexing and demultiplexing strategy for future terahertz data networks, which have the potential to deliver data many times faster than today's cellular or Wi-Fi networks.
CREDIT: MITTLEMAN LAB / BROWN UNIVERSITY

http://www.eurekalert.org/pub_releases/2015-09/bu-rdk091015.php
PROVIDENCE, R.I. [Brown University] -- Terahertz radiation could one day provide the backbone for wireless systems that can deliver data up to one hundred times faster than today's cellular or Wi-Fi networks. But there remain many technical challenges to be solved before terahertz wireless is ready for prime time.
Researchers from Brown University have taken a major step toward addressing one of those challenges. They've developed what they believe to be the first system for multiplexing terahertz waves. Multiplexers are devices that enable separate streams of data to travel through a single medium. It's the technology that makes it possible for a single cable to carry multiple TV channels or for a fiber optic line to carry thousands of phone calls at the same time.
"Any terahertz communications application is going to need some form of multiplexing and demultiplexing," said Daniel Mittleman, professor of engineering at Brown and senior author of a paper describing the new device. "This is, to our knowledge, the first time anyone has demonstrated a viable strategy for multiplexing in the terahertz range."
The research was published September 14 in Nature Photonics.
Today's cellular and Wi-Fi networks rely on microwaves to carry voice conversations and data. But the increasing demands for data transfer are quickly becoming more than microwaves can handle. Terahertz waves have a much higher frequency and therefore more potential bandwidth. Scientists and engineers have only recently begun exploring the potential of terahertz waves, however. As a result, many of the components for a terahertz wireless network -- including multiplexers -- have not yet been developed.
The multiplexer that Mittleman and his colleagues have been working on makes use of what's known as a leaky wave antenna. In this case, the antenna is made from two metal plates placed in parallel to form a waveguide. One of the plates has a small slit in it. As terahertz waves travel down the waveguide, some of the radiation leaks out of the slit. It turns out that terahertz waves leak out a different angles depending on their frequency.
"That means if you put in 10 different frequencies between the plates -- each of them potentially carrying a unique data stream -- they'll come out at 10 different angles," Mittleman said. "Now you've separated them and that's demultiplexing."
On the other end, a receiver could be tuned to accept radiation at a particular angle, thus receiving data from only one stream.
"We think it's definitely a reasonable solution to meet the needs of a terahertz communication network," said Nicholas Karl, a graduate student at Brown and the paper's lead author. Karl led the experiments on the device with fellow graduate student Robert McKinney. Other authors on the study are Rajind Mendis, a research professor at Brown, and Yasuaki Monnai from Keio University in Tokyo.
One of the advantages to the approach, the researchers say, is that by adjusting the distance between the plates, it's possible to adjust the spectrum bandwidth that can be allocated to each channel. That could be especially useful when such a device is deployed for use in a data network.
"For example, if one user suddenly needs a ton of bandwidth, you can take it from others on the network who don't need as much just by changing the plate spacing at the right location," Mittleman said.
The group plans to continue its work to refine the device. A research group from Osaka University is collaborating with Mittleman's group to implement the device in a prototype terahertz network they're building.
"This is a first-generation, proof-of-concept device," Karl said. "There are still things we can do to improve it and we'll continue to study it."
Mittleman hopes that the work will challenge other researchers to start developing components for terahertz networks.
"The biggest impact this may have is it may just be the kick that people need to start thinking about this issue," Mittleman said. "That means they'll start coming up with clever ideas that are entirely different from this one."
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The work was supported by the National Science Foundation and the W.M. Keck Foundation.

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