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Search indexed NASA NTRS and DOE OSTI research on propulsion, heat transfer, battery materials and energy systems. Follow report and document links to the original sources.
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Observation of a non-Hermitian supersonic mode on a trapped-ion quantum computer
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Long-time error-mitigating simulation of open quantum systems on near term quantum computers
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Hybrid classical and quantum computing for enhanced glioma tumor classification using TCGA data
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Assessment of quantum phase estimation protocols for early fault-tolerant quantum computers
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Open-quantum-system simulation through exploiting noise on quantum computers
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Quantum Computing and High Energy Physics
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State Preparation & Linear Response on Quantum Computers
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Noise tailored fault-tolerant Quantum computation with Strontium-87 atoms
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Superconducting Technologies: Exploring the Evolution of Superconducting Technology, from Applications in Particle Accelerators to Cutting-Edge Advancements in Quantum Computing
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Creating and Probing Large Gap 2D Topological Insulators for Quantum Computing (Final Report)
Research under this award focused on experimental and theoretical efforts in developing and characterizing 2D topological insulators (TIs). Key areas of investigation included materials synthesis, device fabrication and characterization, and theoretical advancements. The team synthesized ZrTe 5 , a material with potential for TI phases. Additionally, the team pursued the synthesis of elemental thin films like Indene and Bismuthene, known for their large TI gaps. Indene was successfully stabilized on SiC. Another approach involved stacking and twisting transition metal dichalcogenides (TMDs) to engineer desired TI band structures. On the theoretical front, advancements made under this award predicted remarkable topological properties in twisted WSe2 bilayers, motivating experimental efforts to realize these states. Regarding device fabrication and characterization, significant progress was made in reducing contact resistance, crucial for reliable transport measurements. Contactless Pulsed Tunneling Spectroscopy (CPTS) was employed to study the electronic properties of WTe 2 and WSe 2 . However, challenges in device fabrication and electrode material selection hampered efforts to obtain desired spectra. Ancillary work, utilizing pulsed electrical methods, on the study of sliding ferroelectrics yielded impactful results demonstrating high speed operation and lack of degradation of devices after many billions of cycles.