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National Institute of Standards and Technology quantum computers
Quantum Computers, supplied by National Institute of Standards and Technology, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/quantum+computing/quantum+computers/pmc11213889-24-10-1
Average 90 stars, based on 1 article reviews
quantum computers - by Bioz Stars, 2026-10
90/100 stars

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Article Title: Architecture for a large-scale ion-trap quantum computer.
Article Snippet: quantum computer D. Kielpinski*, C. Monroe† & D. J. Wineland‡ * Research Laboratory of Electronics and Center for Ultracold Atoms, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA † FOCUS Center and Department of Physics, University of Michigan, Ann Arbor, Michigan 48109-1120, USA ‡ Time and Frequency Division, National Institute of Standards and Technology, Boulder, Colorado 80305, USA ...........................................................................................................................................................................................................................

Article Title: Guest editorial: Fintech: past, present and future
Article Snippet: Guest editorial: Fintech: past, present and future

Article Title: Information encoding and encryption in acoustic analogues of qubits
Article Snippet: The National Institute of Standards and Technology (NIST) predicts that quantum computers will render present public key encryption techniques obsolete by 2028.

Article Title: Large-scale modular quantum-computer architecture with atomic memory and photonic interconnects
Article Snippet: Large-scale modular quantum-computer architecture with atomic memory and photonic interconnects C. Monroe,1 R. Raussendorf,2 A. Ruthven,2 K. R. Brown,3 P. Maunz,4,* L.-M. Duan,5 and J. Kim4 1Joint Quantum Institute, University of Maryland Department of Physics and National Institute of Standards and Technology, College Park, Maryland 20742, USA 2Department of Physics and Astronomy, University of British Columbia, Vancouver, British Columbia V6T1Z1, Canada 3Schools of Chemistry and Biochemistry; Computational Science and Engineering; and Physics, Georgia Institute of Technology, Atlanta, Georgia 30332, USA 4Department of Electrical and Computer Engineering, Duke University, Durham, North Carolina 27708, USA 5Department of Physics and MCTP, University of Michigan, Ann Arbor, Michigan 48109, USA and Center for Quantum Information, Tsinghua University, Beijing 100084, China (Received 22 June 2013; published 13 February 2014) The practical construction of scalable quantum-computer hardware capable of executing nontrivial quantum algorithms will require the juxtaposition of different types of quantum systems.

Article Title: Dark state optical lattice with sub-wavelength spatial structure
Article Snippet: 5Joint Center for Quantum Information and Computer Science, National Institute of Standards and Technology and the University of Maryland, College Park, Maryland 20742 USA.

Article Title: Unlocking Complexity: D-Wave\'s Role in Quantum Computing Breakthroughs
Article Snippet: According to the National Institute of Standards and Technology (NIST), the emergence of quantum computers proposes a significant threat to the existing public key encryption methods [11].

Article Title: Cybersecurity Threats and Mitigation Strategies in the Age of Quantum Computing
Article Snippet: For example, quantum computers could potentially crack RSA and elliptic-curve cryptography (ECC), which are currently used to secure sensitive information, from personal data to national security communications (National Institute of Standards and Technology [NIST], 2022).

Article Title: Provably secure identity-based identification and signature schemes from code assumptions
Article Snippet: With the development of quantum computers, NIST (National Institute of Standards and Technology) made a call for quantum resistant algorithms in 2016.



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The attenuation of diabetes-induced osteoporosis through ANGPTL8 knockout. ( A ) Schematic representation of the diabetic osteoporosis model construction. ( B ) FBG levels in mice at the onset (0 weeks) and conclusion (20 weeks) of the experiment. ( C ) Body weight measurements of mice at the onset (0 weeks) and conclusion (20 weeks) of the experiment. ( D ) ELISA analysis for quantifying ANGPTL8 levels in mouse plasma. ( E <t>)</t> <t>Micro-CT</t> imaging of mouse femurs. ( F - J ) Analysis of Micro-CT data for bone mineral density (BMD), bone volume fraction (BV/TV), trabecular number (Tb.N), trabecular thickness (Tb.Th), and trabecular separation (Tb.Sp) in mouse femurs. Data are presented as mean ± SD; ( N = 5). ns: not significant, * p < 0.05, ** p < 0.01, *** p < 0.001
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Experimental phantom composition. (a) Phantoms’ background absorption and reduced scattering coefficients. (b) Set of phantom molds with capillary tubes at different depths. (c) Capillary tube depth confirmation <t>using</t> <t>micro-computed</t> tomography.
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The attenuation of diabetes-induced osteoporosis through ANGPTL8 knockout. ( A ) Schematic representation of the diabetic osteoporosis model construction. ( B ) FBG levels in mice at the onset (0 weeks) and conclusion (20 weeks) of the experiment. ( C ) Body weight measurements of mice at the onset (0 weeks) and conclusion (20 weeks) of the experiment. ( D ) ELISA analysis for quantifying ANGPTL8 levels in mouse plasma. ( E ) Micro-CT imaging of mouse femurs. ( F - J ) Analysis of Micro-CT data for bone mineral density (BMD), bone volume fraction (BV/TV), trabecular number (Tb.N), trabecular thickness (Tb.Th), and trabecular separation (Tb.Sp) in mouse femurs. Data are presented as mean ± SD; ( N = 5). ns: not significant, * p < 0.05, ** p < 0.01, *** p < 0.001

Journal: Cellular and Molecular Life Sciences: CMLS

Article Title: ANGPTL8 accelerates bone loss in diabetic mice by promoting osteoclastic differentiation and inhibiting osteoblastic differentiation through AMPK pathway-mediated metabolic reprogramming

doi: 10.1007/s00018-025-06077-x

Figure Lengend Snippet: The attenuation of diabetes-induced osteoporosis through ANGPTL8 knockout. ( A ) Schematic representation of the diabetic osteoporosis model construction. ( B ) FBG levels in mice at the onset (0 weeks) and conclusion (20 weeks) of the experiment. ( C ) Body weight measurements of mice at the onset (0 weeks) and conclusion (20 weeks) of the experiment. ( D ) ELISA analysis for quantifying ANGPTL8 levels in mouse plasma. ( E ) Micro-CT imaging of mouse femurs. ( F - J ) Analysis of Micro-CT data for bone mineral density (BMD), bone volume fraction (BV/TV), trabecular number (Tb.N), trabecular thickness (Tb.Th), and trabecular separation (Tb.Sp) in mouse femurs. Data are presented as mean ± SD; ( N = 5). ns: not significant, * p < 0.05, ** p < 0.01, *** p < 0.001

Article Snippet: The trabecular bone microarchitecture in the right femur of mice was assessed using Micro-computed tomography (Micro-CT) scanning (Quantum GX2; Perkin Elmer).

Techniques: Knock-Out, Enzyme-linked Immunosorbent Assay, Clinical Proteomics, Micro-CT, Imaging

Experimental phantom composition. (a) Phantoms’ background absorption and reduced scattering coefficients. (b) Set of phantom molds with capillary tubes at different depths. (c) Capillary tube depth confirmation using micro-computed tomography.

Journal: Journal of Biomedical Optics

Article Title: Evaluation of analytical models to estimate depth of fluorescence objects in biological media

doi: 10.1117/1.JBO.31.2.026003

Figure Lengend Snippet: Experimental phantom composition. (a) Phantoms’ background absorption and reduced scattering coefficients. (b) Set of phantom molds with capillary tubes at different depths. (c) Capillary tube depth confirmation using micro-computed tomography.

Article Snippet: Once solidified, the phantoms immediately underwent fluorescence imaging followed by confirmation of fluorescent inclusion (i.e., capillary tube) depth by micro-computed tomography scanning ( 80 μ m resolution, Quantum GX3, Revvity, Waltham, Massachusetts, United States); shows an example of depth confirmation for a capillary tube of 7 mm nominal depth.

Techniques: Micro-CT