Showing posts with label 3D printing. Show all posts
Showing posts with label 3D printing. Show all posts

Monday, July 13, 2020

Abstract-Terahertz beam steering using active diffraction grating fabricated by 3D printing


Johannes M. Seifert, Goretti G. Hernandez-Cardoso, Martin Koch, and Enrique Castro-Camus
a) Photograph of the free-standing grating as printed. (b) Photograph of the grating in its pressing mount, a close-up image of three periods of the grating with a reference scale on the right-hand-size (1 mm per line) is provided. (c) Schematic of geometry of the THz optical path, the receiver and its corresponding lens are mounted on a motorized goniometer in order to vary the detection angle.

https://www.osapublishing.org/oe/abstract.cfm?uri=oe-28-15-21737

In this article, we propose variable-period diffraction gratings for terahertz frequencies. The design, fabrication and characterization of such devices are presented. Our measurements show the possibility to actively shift of the deflection angle for each frequency using this device. We also demonstrated that, when driven by a speaker, these variable gratings can be used for active beam steering with potential application in terahertz communications.
© 2020 Optical Society of America under the terms of the OSA Open Access Publishing Agreement

Friday, May 24, 2019

Abstract-3D Printing Metallised Plastics as Terahertz Reflectors



J. A. Colla, R. E. M. Vickers, M. Nancarrow, R. A. Lewis,

https://link.springer.com/article/10.1007%2Fs10762-019-00596-y

3D printing of new metallised plastics is investigated as a means to realise rapid creation of reflective optics for the terahertz regime. The suitability of three commercially available candidate materials was tested across a range of systems which span from 0.2 to 10 THz. Simple reflective planes were printed and characterised by spectroscopy and microscopy. Samples were polished which is shown to give a dramatic improvement to the reflectivity for these materials. The results indicate that metallised plastics have potential uses in low frequency rapid prototyping of reflective optics.

Saturday, December 29, 2018

Abstract-Broadband terahertz ZnO photonic crystals fabricated by 3D printing


Carmen R.TubíoJosé Antonio NóvoaJorge MartínFrancisco GuitiánJosé Ramón SalgueiroAlvaro Gil
Fig. 1. (A) Schematic representation of woodpile PC
https://www.sciencedirect.com/science/article/pii/S0272884218334837

ZnO has been demonstrated to be a promising material for optoelectronic applications in the terahertz (THz) spectral range. However, there have been no reports regarding the fabrication of ZnO structures to control THz radiation, as photonic crystal (PCs) materials. Here, we focus on the development of a functional ZnO PCs for the THz band. The functionality is provided by the design that is based on a woodpile lattice with the appropriate periodicity for the THz region. Using a three-dimensional (3D) printing technique, we fabricate 3D ZnO based PCs with an effective lattice constant to generate a bandgap at the THz region. The functionality of the resulting PC was evaluated using THz time-domain spectroscopy combined with theoretical simulations. The results demonstrate the 3D woodpile lattice structure has good optical properties in the THz frequency region. These results serve as a step for the development of new THz functional devices for optoelectronics applications.

Saturday, December 8, 2018

3D printed terahertz circuits boost for 5G comms and satellite sensors


Car radars, 5G communication systems and satellite-based atmospheric sensors could all be improved as a result of a UK project to develop 3D printed terahertz and microwave circuits.
By 
https://www.theengineer.co.uk/3d-terahertz-circuits/
Although 3D printing is widely used in many areas of manufacturing, its use in microwave and terahertz circuits has so far been limited by the level of precision required to build devices at such a small scale.
However, the accuracy of 3D printers has significantly improved in recent years, with some now able to print down to a resolution of five microns or less, according to Michael Lancaster at Birmingham University, who is leading the EPSRC-funded project.
So the research team are aiming to work with 3D printing companies to design and print novel devices at these small scales, he said. By using 3D printing techniques, the researchers hope to rapidly generate novel circuits with complex shapes and multiple functions in a lightweight form, without producing large amounts of waste material.
This should result in reliable, low cost circuits with improved performance, and faster manufacturing lead times.
The project will focus on 3D printed circuits at frequencies above 50GHz, which are typically used for free space communications, security sensing and remote monitoring of the Earth’s atmosphere.
“The immediate applications are 5G communications and car radar, which has frequencies well above 100GHz, and so we’re working with Jaguar Land Rover,” said Lancaster. “In this particular project we’re also working with Rutherford Appleton Laboratory (RAL), who are interested in atmospheric sensing: putting these things on satellites to look down at the atmosphere, to study the weather and other atmospheric conditions,” he said.
The researchers are particularly interested in the filters and other metal components found alongside the antenna and electronics on terahertz and microwave circuits, said Lancaster.
“As the devices go up in frequency these components get more difficult to make,” said Lancaster.
Rather than buying in their own 3D printers, which would no longer be at the cutting edge of the technology by the end of the three-year project, the researchers are buying in printing services from specialist companies.
“We’re looking for the best companies around the world who can print things very accurately,” he said. “At the moment we are talking to a company called 3D MicroPrint in Germany, and Swissto12 in Switzerland.”

Saturday, June 16, 2018

New algorithm can discover materials with unusual characteristics—including invisibility



“With this algorithm, we can design new metamaterial properties on demand,” said Liu, an assistant professor of mechanical and industrial engineering. Credit: Adam Glanzman/Northeastern University

https://phys.org/news/2018-06-algorithm-materials-unusual-characteristicsincluding-invisibility.html#jCp
by Allie Nicodemo, Northeastern University

Metamaterials are artificially engineered materials. Scientists create them by combining multiple elements from composite materials such as a metal and an electrical insulator. The result is an entirely new material with properties not found in nature. Engineers can then use these materials to create new devices or improve existing ones.
There are hundreds of thousands of potential material structures with optical responses that fall somewhere along the optical spectrum. Sifting through them to find a new material design has traditionally taken hours or even days.Let's say you want to build a real-life invisibility cloak. To achieve invisibility, a metamaterial needs to possess certain optical properties. Specifically, scientists would have to design the material so that they could control how light moves around an object without being reflected or absorbed. This design is possible, but it would take just the right material with just the right structure.
Now, Northeastern professor Yongmin Liu has developed a new method for quickly discovering  that have desirable qualities. In a paper published recently in ACS Nano, Liu and his co-authors describe a machine learning algorithm they developed and trained to identify new metamaterial structures. The new method is much faster and more accurate than previous approaches, paving the way for engineers to design next-generation materials.
The algorithm Liu and his team built was trained with a data set of 30,000 different samples, each representing a specific relationship between a metamaterial structure and corresponding optical property. Once the algorithm learned those relationships, it was able to predict new ones.
"Searching through all possible parameter combinations for materials is nearly impossible. By introducing artificial intelligence to the metamaterial design, I believe the potential of  will be fully realized," said Shuang Zhang, a professor of physics at the University of Birmingham. "Prof. Liu's research points to a new research direction which will be followed by many groups in this field."
Engineers can now use the algorithm to discover new materials with specific useful characteristics. For example, current solar panels can only convert 20 to 30 percent of sunlight to energy. Liu is interested in finding a material capable of 100 percent light absorption to create more efficient solar panels.
"With this algorithm, we can  new metamaterial properties on demand," said Liu, an assistant professor of mechanical and industrial engineering. "These novel optical materials will serve as the foundation for a variety of functional devices."
So, how far off is that invisibility cloak? Liu said he's confident the  would be able to identify the right material. But current technology could only assemble the material on a nano-scale. Fabricating a cloak large enough for someone to wear is a significant challenge that Liu believes scientists are still 10 to 15 years away from overcoming.
"We have seen tremendous progress in advanced manufacturing, such as 3-D printing," Liu said. "I hope that people who work in this area come up with some creative ideas to solve the fabrication challenge for a wearable cloak."

Tuesday, June 12, 2018

Abstract-3D printed fiber optic faceplates by custom controlled fused deposition modeling




Ye Wang, John Gawedzinski, Michal E. Pawlowski, and Tomasz S. Tkaczyk

https://www.osapublishing.org/oe/fulltext.cfm?uri=oe-26-12-15362

A 3D printing technique for manufacturing air-clad coherent fiber optic faceplates is presented. The custom G-code programming is implemented on a fused deposition modeling (FDM) desktop printer to additively draw optical fibers using high-transparency thermoplastic filaments. The 3D printed faceplate consists of 20000 fibers and achieves spatial resolution 1.78 LP/mm. Transmission loss and crosstalk are characterized and compared among the faceplates printed from four kinds of transparent filaments as well as different faceplate thicknesses. The printing temperature is verified by testing the transmission of the faceplates printed under different temperatures. Compared with the conventional stack-and-draw fabrication, the FDM 3D printing technique simplifies the fabrication procedure. The ability to draw fibers with arbitrary organization, structure and overall shape provides additional degree of freedom to opto-mechanical design. Our results indicate a promising capability of 3D printing as the manufacturing technology for fiber optical devices.
© 2018 Optical Society of America under the terms of the OSA Open Access Publishing Agreement

Monday, June 11, 2018

Abstract-Feasibility and Characterization of Common and Exotic Filaments for Use in 3D Printed Terahertz Devices


A. D. Squires, R. A. Lewis,

https://link.springer.com/article/10.1007%2Fs10762-018-0498-y

Recent years have seen an influx of applications utilizing 3D printed devices in the terahertz regime. The simplest, and perhaps most versatile, modality allowing this is Fused Deposition Modelling. In this work, a holistic analysis of the terahertz optical, mechanical and printing properties of 17 common and exotic 3D printer filaments used in Fused Deposition Modelling is performed. High impact polystyrene is found to be the best filament, with a useable frequency range of 0.1–1.3 THz, while remaining easily printed. Nylon, polylactic acid and polyvinyl alcohol give the least desirable terahertz response, satisfactory only below 0.5 THz. Interestingly, most modified filaments aimed at increasing mechanical properties and ease of printing do so without compromising the useable terahertz optical window.

Monday, May 22, 2017

Abstract-q-plate for the Generation of Terahertz Cylindrical Vector Beams Fabricated by 3D Printing


  • A. I. Hernandez-Serrano, 
  • E. Castro-Camus, 
  • D. Lopez-Mago
https://link.springer.com/article/10.1007%2Fs10762-017-0396-8

We present the design, fabrication, and characterization of a q-plate with continuous birefringence variation at terahertz frequencies. This q-plate was fabricated by three-dimensional printing and is a simple solution for the generation of cylindrical vector beams. This device can find a number of applications in future terahertz technologies such as telecommunications.

Thursday, December 15, 2016

Abstract-3D-printed diffractive elements induced accelerating terahertz Airy beam




Changming Liu, Liting Niu, Kejia Wang, and Jinsong Liu

https://www.osapublishing.org/oe/abstract.cfm?uri=oe-24-25-29342

We first demonstrate the accelerating terahertz (THz) Airy beam with a 0.3-THz continuous wave. Two diffractive elements are designed and 3D-printed to form the generation system, which cannot only imprint the desired complex phase pattern but also perform the required Fourier transform (FT). We both numerically and experimentally demonstrate the propagation dynamics of the accelerating THz Airy beam and investigate its self-healing property during propagation in the free space. Our observations are in good agreement with the numerical simulations. Such an accelerating THz Airy beam could be able to develop novel THz imaging systems and robust THz communication links.
© 2016 Optical Society of America
Full Article  |  PDF Article

Tuesday, September 20, 2016

Abstract-3D printed low-loss THz waveguide based on Kagome photonic crystal structure



Jing Yang, Jiayu Zhao, Cheng Gong, Haolin Tian, Lu Sun, Ping Chen, Lie Lin, and Weiwei Liu

https://www.osapublishing.org/oe/abstract.cfm?uri=oe-24-20-22454


A low-loss hollow core terahertz waveguide based on Kagome photonic crystal structure has been designed and fabricated by 3D printing. The 3D printed waveguide has been characterized by using THz time-domain spectroscopy. The results demonstrate that the obtained waveguide features average power propagation loss of 0.02 cm−1 for 0.2-1.0 THz (the minimum is about 0.002 cm−1 at 0.75 THz). More interesting, it could be simply mechanically spliced without any additional alignment, while maintaining the excellent performance. The 3D printing technique will be a promising solution to fabricate Kagome THz waveguide with well controllable characteristics and low cost.
© 2016 Optical Society of America
Full Article  |  PDF Article

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
Full Article  |  PDF Article

Wednesday, December 23, 2015

Abstract-3D printing of Al2O3 photonic crystals for terahertz frequencies


RSC Adv., 2015, Accepted Manuscript

DOI: 10.1039/C5RA22737B
Received 29 Oct 2015, Accepted 23 Dec 2015
First published online 23 Dec 2015

http://pubs.rsc.org/en/content/articlelanding/2015/ra/c5ra22737b#!divAbstract

Reported here is the fabrication and characterization of a three-dimensional photonic crystal for terahertz frequencies based on 3D printing of Al2O3. Specific inks containing Al2O3, the material required for the structure, are synthesized with the viscosity and rheological properties necessary to be extruded through nozzles of micrometric section. The process is completed by a thermal sintering to obtain compact structures. SEM measurements are performed to evaluate the quality of the structures and measure the geometrical parameters. Finally, the presence of the band gap is demonstrated by THz time-domain spectroscopy.

Sunday, August 16, 2015

Printing the Future of Engineering

Students in Hao Xin's lab perform measurements on a 3-D printed prototype of a Lüneburg lens. (Image: Hao Xin)
Students in Hao Xin's lab perform measurements on a 3-D printed prototype of a Lüneburg lens. (Image: Hao Xin)

http://uanews.org/story/printing-the-future-of-engineering
By Daniel Stolte,

3-D printing is revolutionizing the ways engineers think about and make highly complicated devices, with applications ranging from wireless communication to air traffic control to earthquake-proof buildings.


Hao Xin opens the door to his lab and points to an object that looks like some kind of strange, synthetic sponge made by an alien race much more advanced than ours.
"This is a prototype of a Lüneburg lens that we made," Xin says.


Lüneburg lenses are sought-after devices that could greatly advance wireless communications, among other applications. (Image: Hao Xin)

A lens?
Never mind the fact that it's neither transparent nor made of glass, but of a porous yet weirdly symmetric-looking, plasticky substance of oddly unappealing, pale gray color. Move your eyes closer, and your mind gets lost in a dazzling array of a myriad of tiny branchlets connected to each other at right angles, forming a thicket that gets denser toward the center of the object.
"This lens is not made for light," Xin says, "but for electromagnetic waves in the terahertz range, which is between microwaves and radio waves."
Now things make a bit more sense. Unlike light visible to humans, which is pretty picky and travels only through air, water or transparent things (for the most part), terahertz waves pass through anything from synthetics to textiles to cardboard. Because many biomolecules, proteins, explosives or narcotics absorb terahertz radiation in telltale ways, waves of this range can be used to detect such substances in airport security lanes, for example. 
Hao Xin is an associate professor in the Department of Electrical and Computer Engineering in the UA's College of Engineering.

Xin, a professor in electrical and computer engineering who heads the Millimeter Wave Circuits and Antennas Laboratory at the University of Arizona's College of Engineering, is harnessing the possibilities of three-dimensional printing to create materials and structures that not too long ago would have been written off as science fiction.
"By using 3-D printing and new design approaches, we are able to come up with components such as antennas, wave guides, lenses and holographic devices that are better than existing technology and haven't been possible to make before," he says.


In one line of research, Hao Xin's team is developing 3-D printing solutions to the challenges of combining different materials, as in this coplanar waveguide, a device that is used to transmit microwave-frequency signals. (Image: Hao Xin)

As computers, communication devices and other IT applications get smaller and can do ever more amazing things, engineers have to overcome ever greater challenges in designing and building the components that make them work.
Some applications require the invention of new materials. Some require new ways of manufacturing. And some require both.
Xin's group is one of the first to adopt 3-D printing approaches to make so-called metamaterials, engineered materials with properties not found in nature. Unlike conventional materials such as metals or plastics, metamaterials consist of assemblies of elements made from conventional materials, usually in repeating patterns. Their special properties arise not so much from the properties of their ingredients, but from the shape, geometry and orientation of their subunits. They can be designed to affect electromagnetic waves, sound and even the shockwaves of an earthquake in ways that would be impossible to achieve with traditional materials.
"Traditionally, it has been very difficult to make those three-dimensional, periodic structures," Xin explains. "Oftentimes, someone produces a two-dimensional prototype of a three-dimensional object to demonstrate some desired property, but those aren't very practical, nor do they have all the properties they need in order to work for application in question."


This horn antenna (used to focus beams of terahertz radiation) made by a 3-D printer in Xin's lab is another example of fabricating sophisticated devices more simply and cost-effectively than conventional processes. (Image: Hao Xin)

Xin's team has successfully created highly complicated structures using 3-D printing, such as the Lüneburg lens, which has applications ranging from microwave antennas to radar calibration devices.
"A Lüneburg lens makes a fantastic antenna that can be used for wireless communication and radar installations," Xin says, "but traditionally it is built manually, which is not cost-effective, and you can't make it very precise. Now we can make it at much lower cost and more precise."
Xin's lab also uses 3-D printers to make a range of conventional things, such as regular antennas and integrated circuits. It is one of the first to apply the approach to metamaterials to build innovative electromagnetic applications, and it has support from the National Science Foundation, the U.S. Air Force Office of Research, Raytheon and even Google.
Earlier this year, the team made waves when it published the first successful attempt at designing what many consider the holy grail of metamaterials: a negative refraction metamaterial that not only bends electromagnetic waves (in this case, microwaves) backward but also does not diminish energy in the process. All previous designs suffered from the fact that the waves lost a large portion of their energy when passing through the material.
Xin's accomplishment could bring negative refraction metamaterials closer to applications aiming at manipulating electromagnetic radiation in new ways.
One of them is a so-called phased array, a sophisticated assembly of antennas capable of focusing and pointing a beam of electromagnetic radiation. Used in radar applications for a long time, such arrays form a vital part of the next generation of wireless communication such as the 5G network.
"Unlike rotating radar antennas that you see at airports, which are limited to rotating speeds based on mechanical parts, a phased array doesn't move and has no moving parts that can fail," Xin explains. "Plus, the antenna can scan as fast as microseconds and in any direction you want.
"But for traditional phased arrays, the manufacturing cost and the mechanical assembly are quite expensive, and sometimes problematic. So if we use a 3-D printer where we can print a vertically integrated phased array, it is cheaper and offers better performance in a smaller footprint."
Therein lies the main advantage of 3-D printing over traditional assembly, according to Xin: It becomes possible to build extremely complex and intricate structures consisting of different materials in three-dimensional space rather than by stacking two-dimensional components, each made from one material.
"Take the way we design electronic components, for example," Xin says. "Traditionally, everything is printed on a flat circuit board, and if you need vertical integration, you have to make another board, and another, and then you connect them together. That is a costly process."
On the other hand, 3-D printing allows putting one material with one property in one location, and a material with a different property in another location, Xin explains.

"It doesn't matter how complicated the structure you're building," he says. "You can even think more futuristically. Your smartphone is essentially a three-dimensional block made of metal, glass, semiconductors and plastics. 

Of course, today we can't yet do this, but if 3-D printing technology becomes sufficiently advanced, we may be able to print the whole cellphone at once."

Sunday, July 26, 2015

OT- LUNA INNOVATIONS BLOG-Testing for Residual Strains in 3D Printed Components using High Definition Distributed Fiber Optic Sensing (HD-FOS)



http://lunainc.com/testing-residual-strains-3d-printed-components-high-definition-distributed-fiber-optic-sensing-hd-fos/


In the May 2015 issue of the Harvard Business Review, Richard D’Aveni states that additive manufacturing is on the brink of completely transforming the design and production ecosystems for manufacturers of tangible goods.   https://hbr.org/2015/05/the-3-d-printing-revolution  Additive manufacturing frees both designers and manufacturers from many of the constraints of the normal product design, prototyping and industrialization process.  The cost and lead time for tooling can be eliminated and designers can create greater numbers of increasingly more complex parts, seemingly limited only by their imaginations. According to the author, the result will be a complete re-thinking of how business operations are conducted.
While the rapid advancements of additive manufacturing technology have begun to change the paradigm for product design and manufacturing, the requirements for test and design validation remain the same. If anything, the growing penetration of additive manufactured parts into structural components along with an ever expanding range of available materials are combining to make traditional test methods completely inadequate for validating designs of additively manufactured components.  In particular is the problem of internal residual stresses that can accumulate during the buildup of material during the printing process.  Residual stress can cause layer delamination, part distortion and cracking and are a significant barrier to the wider adoption of additively manufactured parts in structural applications.
Fortunately, commensurate with the coming 3-D printing revolution is an equally revolutionary technology from Luna Innovations that can be used to measure strain on complex surfaces and, and by embedding the sensor during printing, actually measure strain inside the component.  The fiber optic sensor, with a diameter of only 155 micro meters, can be embedded un-obtrusively during printing and not impact the components inherent characteristics.
To demonstrate this capability Luna engineers constructed a block using a 3D printer.  The block was 3 inches in height with a base of 4 x 1.5 inches and constructed using ABS material.  During printing, the operation was paused and the head lifted to allow laying a section of the fiber lengthwise across the block.  A segment of the fiber was embedded every 0.3 inches resulting in a total of 9 layers vertically spaced 0.3 inches apart.  Figure 1 shows the dimensions and pattern of embedded fiber.
Figure 1. To demonstrate this capability Luna engineers constructed a block using a 3D printer. The block was 3 inches in height with a base of 4 x 1.5 inches and constructed using ABS material. During printing, the operation was paused and the head lifted to allow laying a section of the fiber lengthwise across the block. A segment of the fiber was embedded every 0.3 inches resulting in a total of 9 layers vertically spaced 0.3 inches apart. Figure 1 shows the dimensions and pattern of embedded fiber.
Figure 2 shows the ABS block, nearly completed with a single fiber sensor embedded during its construction.





























Strain measurements were recorded using Luna’s ODiSI high definition fiber optic sensing system both during the printing process and also after its completion once the fabricated part cooled to ambient temperature.  The scan of strain taken at ambient temperature showed a significant amount of residual strain concentrated near the centerline of the ABS block and diminishing in proportion to the distance from the blocks center line.  Figure 3 shows the strain measurements plotted vs the height of the sensor segment from the base of the block.  The strain data shows clearly a very high level of residual stress existing within the bloc
Figure 3.
Figure 3.
Residual stresses and strains accumulate in the 3D printing fabrication process during the build-up of material and can have a significant and detrimental effect on the mechanical strength of a part. These residual stresses can couple additively to stresses from external loading, resulting in unexpected or premature failure.  Residual strains and stresses can be mitigated through a combination of material selection and through a careful optimizing of the various fabrication parameters.  The ODiSI high definition fiber optic sensing system when used in conjunction with this iterative process optimization can ensure parts built with additive manufacturing not only meet the design requirements, but can be built in volume production with a known and consistent process capability for critical parameters.
The data and test methods from Luna’s experiment have been shared with researchers at Oak Ridge National Laboratory (ORNL) and Luna engineers are now working in partnership with ORNL to experiment with embedding sensors in 3D printed components.
If 3D printing is truly going to revolutionize manufacturing and change the way businesses operate then paving the way will be equally revolutionary methods to test and validate these rapid advancements in 3D printing technology.  The accumulation of residual strains and stresses need to be controlled in order to maintain design integrity, reliability and quality.  These stresses and strains can only be controlled if they can be measured and Luna’s ODiSI system, with its ability to embed sensors and provide high definition strain measurements is the perfect solution.