Showing posts with label 6G terahertz wireless. Show all posts
Showing posts with label 6G terahertz wireless. Show all posts

Thursday, September 10, 2020

Terahertz receiver for 6G wireless communications

Future mobile network: Small radio cells (orange) are connected by wireless high-speed terahertz links (green). Credit: IPQ, KIT / Nature Photonics
by Monika Landgraf

https://phys.org/news/2020-09-terahertz-6g-wireless.html

Future wireless networks of the 6th generation (6G) will consist of a multitude of small radio cells that need to be connected by broadband communication links. In this context, wireless transmission at THz frequencies represents a particularly attractive and flexible solution. Researchers at Karlsruhe Institute of Technology (KIT) have now developed a novel concept for low-cost terahertz receivers that consist of a single diode in combination with a dedicated signal processing technique. In a proof-of-concept experiment, the team demonstrated transmission at a data rate of 115 Gbit/s and a carrier frequency of 0.3 THz over a distance of 110 meters. The results are reported in Nature Photonics.

5G will be followed by 6G: The sixth generation of mobile communications promises even higher data rates, shorter latency, and strongly increased densities of terminal devices, while exploiting Artificial Intelligence (AI) to control devices or autonomous vehicles in the Internet-of-Things era. "To simultaneously serve as many users as possible and to transmit data at utmost speed, future wireless networks will consist of a large number of small radio cells," explains Professor Christian Koos, who works on 6G technologies at KIT together with his colleague Professor Sebastian Randel. In these radio cells, distances are short such that  can be transmitted with minimum energy consumption and low electromagnetic immission. The associated base stations will be compact and can easily be mounted to building facades or street lights.
To form a powerful and flexible network, these base stations need to be connected by high-speed wireless links that offer data rates of tens or even hundreds of gigabits per second (Gbit/s). This may be accomplished by terahertz carrier waves, which occupy the frequency range between microwaves and infrared light waves. However, terahertz receivers are still rather complex and expensive and often represent the bandwidht bottleneck of the entire link. In cooperation with Virginia Diodes (VDI) in Charlottesville, U.S., researchers of KIT's Institute of Photonics and Quantum Electronics (IPQ), Institute of Microstructure Technology (IMT), and Institute for Beam Physics and Technology (IBPT) have now demonstrated a particularly simple inexpensive receiver for terahertz signals. The concept is presented in Nature Photonics.
Highest Data Rate Demonstrated So Far for Wireless THz Communications over More Than 100 Meters
"At its core, the receiver consists a single diode, which rectifies the terahertz signal," says Dr. Tobias Harter, who carried out the demonstration together with his colleague Christoph Füllner in the framework of his doctoral thesis. The diode is a so-called Schottky barrier diode, that offers large bandwidth and that is used as an envelope detector to recover the amplitude of the terahertz signal. Correct decoding of the data, however, additionally requires the time-dependent phase of the terahertz wave that is usually lost during rectification.
To overcome this problem, researchers use digital signal processing techniques in combination with a special class of data signals, for which the phase can be reconstructed from the amplitude via the so-called Kramers-Kronig relations. The Kramers-Kronig relation describe a mathematical relationship between the real part and the imaginary part of an analytic signal. Using their receiver concept, the scientists achieved a transmission rate of 115 Gbit/s at a carrier frequency of 0.3 THz over a distance of 110 m.
"This is the highest data rate so far demonstrated for wireless terahertz transmission over more than 100 m," Füllner says. The  receiver developed by KIT stands out due to its technical simplicity and lends itself to cost-efficient mass production.

Thursday, July 16, 2020

Samsung research tackles 6G, says use of THz ‘inevitable’


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Samsung expects the ITU-R will begin work to define a 6G vision in 2021. (Pixabay)
https://www.fiercewireless.com/tech/samsung-research-tackles-6g-says-use-thz-inevitable
Monica Alleven

5G commercialization is still in the early stages, but it’s not too early to start thinking about what 6G will bring. It typically takes about 10 years from the start of research to commercialization of a new generation of wireless technology, notes Samsung, which released a new 6G white paper on Tuesday.

The company says its vision for 6G includes bringing the next hyper-connected experience to every corner of life. To speed research for 6G, Samsung Research founded its Advanced Communications Research Center in May of last year.

“We’ve already launched the research and development of 6G technologies by building upon the experience and ability we have accumulated from working on multiple generations of communications technology, including 5G,” said Sunghyun Choi, head of the Advanced Communications Research Center, in a press release. “Going forward, we are committed to leading the standardization of 6G in collaboration with various stakeholders across industry, academia and government fields.”

While the industry overall is just getting started in 5G, academics and others are studying what needs to happen in 6G. It was a keynote topic at last year’s Brooklyn 5G Summit, where Nokia Bell Labs President Marcus Weldon suggested that if people are skittish about using the phrase 6G, they can talk about it by framing it in terms of “Beyond 5G.”


For 6G, Samsung expects the ITU-R will begin work to define a 6G vision in 2021. Taking into account the tendency for technical standards development to accelerate for each new generation, Samsung expects the 6G standard could be completed and commercialized as early as 2028, with mass commercialization occurring around 2030.
To realize advanced multimedia services such as truly immersive extended reality (XR), mobile holograms and digital replicas, 6G needs to provide a much higher data rate than 5G, which was designed to achieve 20 Gbps peak data rate. In 6G, they’re looking to provide the peak data rate of 1,000 Gbps.  

The white paper says that with the help of advanced sensors, artificial intelligence (AI) and communication technologies, it will be possible to replicate physical entities, including people, devices, objects and places in a virtual world. The digital replica of a physical entity is called a digital twin, and in a 6G environment, users will be able use digital twins to explore and monitor the reality in a virtual world, without temporal or spatial constraints.

Terahertz bands 'inevitable'

To satisfy the requirements for 6G, the industry may turn to the terahertz (THz) frequencies, new antenna technologies to enhance the coverage of high frequency band signals, advanced duplex technologies, spectrum sharing and AI.

The paper says it’s inspiring that in March 2019, the FCC opened the spectrum between 95 GHz and 3,000 GHz for experimental use and unlicensed applications to encourage the development of new technologies. Discussions on use cases and deployment scenarios for 5G new radio (NR) systems operating at bands beyond 52.6 GHz have begun, and following this trend, “it is inevitable” that mobile communications will use THz bands (i.e., 0.1-10 THz]) in future systems.


To cope with the difficult propagation characteristics of the THz bands, it may be natural to enhance the massive MIMO technology that was introduced to support millimeter wave (mmWave) bands in 5G. But the paper notes that since the THz band requires much more antennas than the mmWave band, there may be significantly more practical difficulties.