Showing posts with label Haomin Song. Show all posts
Showing posts with label Haomin Song. Show all posts

Monday, March 31, 2014

Photonics breakthrough advances thin-film solar cell performance


http://www.electronics-eetimes.com/en/photonics-breakthrough-advances-thin-film-solar-cell-performance.html?cmp_id=7&news_id=222920627&vID=209&page=1
Paul Buckley
Researchers at the University at Buffalo have developed a multilayered waveguide taper array, which is a nanoscale microchip component that claims to improve the ability to trap and absorb light and could advance the performance of thin-film solar cell technology.
The work, published March 28 in the journal Scientific Reports, explores the use of waveguide tapers to slow and ultimately absorb each frequency of light at different places vertically to catch a 'rainbow' of wavelengths, or broadband light.

We previously predicted the multilayered waveguide tapers would more efficiently absorb light, and now weve proved it with these experiments, explained lead researcher Qiaoqiang Gan, PhD, UB assistant professor of electrical engineering. This advancement could prove invaluable for thin-film solar technology, as well as recycling waste thermal energy that is a byproduct of industry and everyday electronic devices such as smartphones and laptops.

Each multilayered waveguide taper is made of ultrathin layers of metal, semiconductors and/or insulators. The tapers absorb light in metal dielectric layer pairs, the so-called hyperbolic metamaterial. By adjusting the thickness of the layers and other geometric parameters, the tapers can be tuned to different frequencies including visible, near-infrared, mid-infrared, terahertz and microwaves.

The structure could lead to advancements in a number of applications.

The multilayered waveguide taper array could improve thin-film photovoltaic cells, which are less expensive and more flexible than traditional solar cells. 

The drawback with thin-film solar cells is that they do not absorb as much light as traditional cells. Because the multilayered waveguide taper structure array can efficiently absorb the visible spectrum, as well as the infrared spectrum, it could potentially boost the amount of energy that thin-film solar cells generate.

In the field of on-chip optical communications there is the crosstalk phenomenon, in which an optical signal transmitted on one waveguide channel creates an undesired scattering or coupling effect on another waveguide channel. The multilayered waveguide taper structure array could potentially prevent crosstalk.



The multilayered waveguide taper array could help recycle waste heat generated by power plants and other industrial processes, as well as electronic devices such as televisions, smartphones and laptop computers.

It could be useful as an ultra compact thermal-absorption, collection and liberation device in the mid-infrared spectrum, said Dengxin Ji, a PhD student in Gans lab and first author of the paper.

It could even be used as a stealth, or cloaking, material for airplanes, ships and other vehicles to avoid radar, sonar, infrared and other forms of detection. The multilayered waveguide tapers can be scaled up to tune the absorption band to a lower frequency domain and absorb microwaves efficiently, added Haomin Song, another PhD student in Gans lab and the papers second author.

Reference
Broadband absorption engineering of hyperbolic metafilm patterns 

Related articles and links:

www.buffalo.edu

Tuesday, January 7, 2014

Abstract-Artificial birefringent metallic planar structures for terahertz wave polarization manipulation



Lei Wang, Suhua Jiang, Haifeng Hu, Haomin Song, Wei Zeng, and Qiaoqiang Gan 
 »View Author Affiliations

http://www.opticsinfobase.org/ol/abstract.cfm?uri=ol-39-2-311

We propose an artificial birefringent terahertz (THz) device constructed by subwavelength L-shaped hole arrays on a single metallic layer. This structure is able to work as a polarizer when the incident frequency is between the cut-off frequencies of two eigenmodes. When the incident wave is beyond cut-off frequencies of these two modes, it can be designed as an efficient half- or quarter-wave plate with extraordinary transmission properties. A big effective index difference from 0.254 to 0.768 is obtained using a subwavelength-thick planar structure, which can reduce the thickness of the device to one tenth of conventional quartz birefringent crystals for THz waves.
© 2014 Optical Society of America

Friday, December 6, 2013

Abstract-Artificial Birefringent Metallic Planar Structures for Terahertz Wave Polarization Manipulation



  • Abstract: We propose an artificial birefringent terahertz (THz) device constructed by subwavelength L-shaped hole arrays on a single metallic layer. This structure is able to work as a polarizer when the incident frequency is between the cutoff frequencies of two eigenmodes. When the incident wave is beyond cutoff frequencies of these two modes, it can be designed as an efficient half- or quarter-wave plate with extraordinary transmission properties. A big effective index difference from 0.254 to 0.768 is obtained using a subwavelength-thick planar structure, which can reduce the thickness of the device to one tenth of conventional quartz birefringent crystals for THz waves.