Showing posts with label Tektronix. Show all posts
Showing posts with label Tektronix. Show all posts

Wednesday, January 3, 2018

Tektronix Instruments Support First Data Transmission Through Terahertz Multiplexer





Demultiplexing of modulated THz channels for different data rates. A 3D numerical simulation (finite element method), of a single-frequency input wave (f = 312 GHz) propagating in the waveguide (b = 0.733 mm) and then radiating into the far field through a slot in the top plate. The horizontal plane shows the intensity in a plane centered between the metal plates. The vertical arc shows the radiated power as a function of angle. The solid green line indicates the angle predicted by Eq.

DPO70000SX 70 GHz Oscilloscope, AWG70000 AWGs Play Key Role in International Research Team's Demonstration of 50 Gb/s Wireless Data Transfers

https://www.prnewswire.com/news-releases/tektronix-instruments-support-first-data-transmission-through-terahertz-multiplexer-300574730.html

BEAVERTON, Ore., Jan. 3, 2018 /PRNewswire/ -- Tektronix, a leading worldwide provider of measurement solutions, today announced that its instruments played an important role in a technology demonstration that could one day enable the next generation of ultra-high bandwidth wireless communications links. In an article published in the journal Nature Communications, an international research team reported the first transmission of two real-time video signals through a terahertz multiplexer at an aggregate data rate of 50 gigabits per second, some100x faster than cellular networks.

With demand for wireless data transmission speeds and capacities growing beyond what microwave signals can carry, the search is on for ways to use higher frequency THz waves that have a much larger capacity to carry data. One of the teams leading the way is an international collaboration between Brown University and the Institut d'Electronique de Microélectronique et de Nanotechnologie (IEMN), CNRS/University of Lille, in France.
This team has previously shown that the worlds of fiber optics and radio can be bridged using photonic-based THz circuits to achieve high-data rates. However, for any system to be viable, a system for multiplexing and demultiplexing (mux/demux) signals is a fundamental requirement. Using a waveguide system involving two metal plates in parallel, the researchers encoded two high-definition television broadcasts onto terahertz waves of two different frequencies: 264.7 GHz and 322.5 GHz. They then sent both frequencies together into the multiplexer system, with a television receiver set to detect the signals as they emerged from the device. Further experiments show that this system could deliver data rates up to 50 Gb/s with low error rates.
The role of test instrumentation
The experiments in the demonstration employed QPSK modulation. For these, the optical signal was modulated using a dual-nested Mach-Zender modulator before a photomixing process generated the dual THz signals. Two Tektronix AWG70000 Series arbitrary waveform generators were then used to create two baseband non-return-to-zero (NRZ) data signals for the in-phase and quadrature data flows.
For detection, the dual frequency THz signal was down-converted in a Schottky-based sub-harmonic mixer to below 40 GHz. The output was then amplified and detected by a Tektronix DPO70000SX 70 GHz oscilloscope. The two QPSK signals corresponding to the down-converted THz channels were further analyzed to recover the modulated data and the corresponding constellation diagrams.
"What this demonstration definitely showed is that a THz multiplexing system can be used to carry actual data without the streams interfering with each other," said Guillaume Ducournau, an assistant professor at IEMN. "With support from Tektronix, we were able to fully test and characterize our system and the results show that this approach could lead to future commercial application of THz wireless networks."
Dean Miles, market development manager in Europe, Middle East and Africa for Tektronix added, "We are absolutely delighted to be involved with IEMN on this technology collaboration. The bridging of fiber optics and radio technologies using photonic-based THz circuits to achieve high-data rates is an area of continuous innovation and this is another example of how test and measurement enables innovation. Advanced test tools are needed today to generate and characterize signals at 100G, 400G and beyond and Tektronix offers a wide portfolio of optical communication test solutions, including those used on this ground-breaking research effort."

Wednesday, July 1, 2015

Terahertz radiation system transmits data at 32 Gigabits per Second


http://www.companiesandmarkets.com/News/Information-Technology/Terahertz-radiation-system-transmits-data-at-32-Gigabits-per-Second/NI10362


French researchers have developed and successfully tested a terahertz system capable of transmitting data at a rate of 32 GB per second.
The researchers, working at the French Institute of Electronics, Microelectronics and Nanotechnology (IEMN) and using components produced by Orgeon, US-based optical test equipment manufacturer Tektronix, demonstrated a wireless system capable of transmitting data at 0.4 THz (400 GHz) using key advanced terahertz devices and advanced signal coding.
In the electromagnetic spectrum, terahertz waves occupy a band from 0.1 THz to 30 THz, the so-called “terahertz gap”, positioned between the optical and radio wavelength.
This band, despite being the least explored and developed part of the electromagnetic spectrum, is expected to play a key part in the quest to satisfy the increasing demand for higher speed wireless communication.
The promising nature of terahertz radiation, allied with its ability to penetrate a wide range of non-conducting materials, has been known to scientists for a considerable amount of time. The earliest images generated using the THz band were made in early 1960s.
The demand for faster wireless data traffic has followed as a result of drastic change in the way society creates and shares information. As predicted by a version of “Moore’s Law” appropriate for this technology, wireless data rates have doubled every 18-24 months over the last three decades. Conditional on this trend being followed, wireless Terabit-per-second (TBps) links may come on the market within the next decade.
One of the key motivations for developing transmission technologies using the THz spectrum is that wireless technologies below 0.1 THz cannot support Tbps links.
The fact that compact wireless technologies above 10 THz are not able to support Tbps links either, despite the large bandwith in the so-called Free Space Optical (FSO) communication systems, poses an additional constraint. As a result, new spectral bands are becoming required to support higher data rates. Terahertz Radiation Systems Market
In 2013 and 2014, the global market for terahertz radiation devices and systems was worth approximately $53 million and $54 million respectively.
Currently, the terahertz spectrum is not regulated and the market remains at a nascent stage of its development. However, the large bandwith provided by the THz band presents a highly attractive proposition.
We may soon see a broad range of networking applications, including 5G cellular networks, Terabit Wireless Local Area Networks (T-WLAN), Terabit Wireless Personal Area Networks(T-WPAN), as well as application of the THz band in ultra-broadband secure communication links in the military and defence fields.