Wednesday, February 20, 2013

Samsung Galaxy S3 vs. HTC One: 5 Reasons Why HTC’s Latest Handset is Better

Taiwanese mobile manufacturer HTC finally unwrapped its latest smartphone - HTC One, dubbed as HTC M7 before.

The new smartphone from HTC wowed critics and reviewers at the launch events in New York. The new handset offers a 1.7 GHz quad-core processor; Near Field Communication; LTE mobile broadband; stereo speakers; a big, 4.7 inch screen with a 468 pixel-per-inch resolution; and a 4 "ultrapixels" camera.

The device is expected to battle head on with some of popular smartphones in the market such as the Samsung Galaxy S3, which is tagged as the best-selling smartphone of the second and third quarter of 2012.

Samsung Galaxy S3 was named as the best device/smartphone of 2012. The tech giant's best-selling phone of 2012 boasts a big 4.8 inch super AMOLED screen display, a quad-core processor, expandable storage, 4G/LTE connectivity and NFC support, and a 2100 mAh battery.

The smartphone received the Androidv4.1.2 Jelly Bean OS with Premium Suite that includes some of the amazing features of Samsung Galaxy Note 2.

Below are the five features of HTC One that makes it better than the popular Samsung Galaxy S3.

Screen Display - The HTC One has a 4.7 inch screen with a 468 pixel-per-inch resolution compared to Samsung Galaxy S3's own 4.7-inch Super AMOLED screen.

Processor - HTC One is powered by quad core Qualcomm Snapdragon processor clocked at 1.7 GHz. Samsung's smartphone packs 1.4 GHz quad core Exynos processor.

Operating System - The HTC One will come with Androidv4.1.2 Jelly Bean OS right out of the box. Some Samsung Galaxy S3 owners, especially those who bought the device through a carrier are still waiting for the update in thir handsets.

Camera - HTC One packed a 4 ultrapixels rear camera that promises clearer and more vivid pictures compared to Samsung Galaxy S3's 8 megapixels shooter.

Battery - HTC One has a 2300 mAh embedded rechargeable Li-polymer battery compared to Galaxy S3's 2100 mAh battery.

Samsung Galaxy S3 is now available for purchase in Samsung stores, resellers and through various carriers. The Australian launch of the phone is set on Thursday night. The handset will be available in March in 80 countries around the world, including in Australia. Vodafone, Telstra and Optus are all listed as carrying the device.?

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Source: http://au.ibtimes.com/articles/437103/20130220/samsung-galaxy-s3-vs-htc-one-specs.htm

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Saturday, February 16, 2013

World's most sensitive plasmon resonance sensor inspired by ancient Roman cup

Feb. 14, 2013 ? Utilizing optical characteristics first demonstrated by the ancient Romans, researchers at the University of Illinois at Urbana-Champaign have created a novel, ultra-sensitive tool for chemical, DNA, and protein analysis.

"With this device, the nanoplasmonic spectroscopy sensing, for the first time, becomes colorimetric sensing, requiring only naked eyes or ordinary visible color photography," explained Logan Liu, an assistant professor of electrical and computer engineering and of bioengineering at Illinois. "It can be used for chemical imaging, biomolecular imaging, and integration to portable microfluidics devices for lab-on-chip-applications. His research team's results were featured in the cover article of the inaugural edition of Advanced Optical Materials (AOM, optical section of Advanced Materials).

The Lycurgus cup was created by the Romans in 400 A.D. Made of a dichroic glass, the famous cup exhibits different colors depending on whether or not light is passing through it; red when lit from behind and green when lit from in front. It is also the origin of inspiration for all contemporary nanoplasmonics research -- the study of optical phenomena in the nanoscale vicinity of metal surfaces.

"This dichroic effect was achieved by including tiny proportions of minutely ground gold and silver dust in the glass," Liu added. "In our research, we have created a large-area high density array of a nanoscale Lycurgus cup using a transparent plastic substrate to achieve colorimetric sensing. The sensor consists of about one billion nano cups in an array with sub-wavelength opening and decorated with metal nanoparticles on side walls, having similar shape and properties as the Lycurgus cups displayed in a British museum. Liu and his team were particularly excited by the extraordinary characteristics of the material, yielding 100 times better sensitivity than any other reported nanoplasmonic device.

Colorimetric techniques are mainly attractive because of their low cost, use of inexpensive equipment, requirement of fewer signal transduction hardware, and above all, providing simple-to-understand results. Colorimetric sensor can be used for both qualitative analytic identification as well as quantitative analysis. The current design will also enable new technology development in the field of DNA/protein microarray.

"Our label-free colorimetric sensor eliminates the need of problematic fluorescence tagging of DNA/ protein molecules, and the hybridization of probe and target molecule is detected from the color change of the sensor," stated Manas Gartia, first author of the article, "Colorimetrics: Colorimetric Plasmon Resonance Imaging Using Nano Lycurgus Cup Arrays." "Our current sensor requires just a light source and a camera to complete the DNA sensing process. This opens the possibility for developing affordable, simple and sensitive mobile phone-based DNA microarray detector in near future. Due to its low cost, simplicity in design, and high sensitivity, we envisage the extensive use of the device for DNA microarrays, therapeutic antibody screening for drug discovery, and pathogen detection in resource poor setting."

Gartia explained that light-matter interaction using sub-wavelength hole arrays gives rise to interesting optical phenomena such as surface plasmon polaritons (SPPs) mediated enhanced optical transmission (EOT). In case of EOT, more than expected amount of light can be transmitted through nanoholes on otherwise opaque metal thin films. Since the thin metal film has special optical property called surface plasmon resonance (SPR) which is affected by tiny amount surrounding materials, such device has been used as biosensing applications.

According to the researchers, most of the previous studies have mainly focused on manipulating in-plane two-dimensional (2D) EOT structures such as tuning the hole diameter, shape, or distance between the holes. In addition, most of the previous studies are concerned with straight holes only. Here, the EOT is mediated mainly by SPPs, which limits the sensitivity and figure of merits obtainable from such devices.

"Our current design employs 3D sub-wavelength tapered periodic hole array plasmonic structure. In contrast to the SPP mediated EOT, the proposed structure relies on Localized Surface Plasmon (LSP) mediated EOT," Gartia said. "The advantage of LSPs is that the enhanced transmission at different wavelengths and with different dispersion properties can be tuned by controlling the size, shape, and materials of the 3D holes. The tapered geometry will funnel and adiabatically focus the photons on to the sub-wavelength plasmonic structure at the bottom, leading to large local electric field and enhancement of EOT.

"Secondly the localized resonance supported by 3D plasmonic structure will enable broadband tuning of optical transmission through controlling the shape, size, and period of holes as well as the shape, size, and period of metallic particles decorated at the side walls. In other words, we will have more controllability over tuning the resonance wavelengths of the sensor."

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The above story is reprinted from materials provided by University of Illinois College of Engineering.

Note: Materials may be edited for content and length. For further information, please contact the source cited above.


Journal Reference:

  1. Manas Ranjan Gartia, Austin Hsiao, Anusha Pokhriyal, Sujin Seo, Gulsim Kulsharova, Brian T. Cunningham, Tiziana C. Bond, Gang Logan Liu. Colorimetric Plasmon Resonance Imaging Using Nano Lycurgus Cup Arrays. Advanced Optical Materials, 2013; 1 (1): 68 DOI: 10.1002/adom.201200040

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Source: http://feeds.sciencedaily.com/~r/sciencedaily/most_popular/~3/09VaFcV_khs/130214111612.htm

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