Atomfair Brainwave Hub: SciBase II / Quantum Computing and Technologies / Advancements in quantum computing and materials

Advancements in quantum computing and materials

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Employing neglected mathematical tools for quantum error correction breakthroughs

Employing silicon photonics co-integration for next-generation quantum computing architectures

For photonic quantum memory with rare-earth-doped crystals

Probing spin relaxation timescales in quantum dots for fault-tolerant qubit design

Combining two unrelated fields: quantum biology and machine learning for protein folding prediction

Using topological insulators for spintronics in low-power quantum computing applications

Via atomic precision defect engineering in 2D materials for quantum computing

Optimizing urban traffic flow in 2040 using quantum-inspired algorithms

Exploring cosmological constant evolution in multiverse theories through quantum gravity frameworks

At zeptosecond resolution probing electron dynamics in quantum materials

Bridging quantum biology with information theory to model enzyme efficiency

Atomic precision defect engineering in diamond lattices for room-temperature quantum memory