Ying-Ying Ye

ORCID: 0009-0006-7122-5321
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About
Contact & Profiles
Research Areas
  • Advanced Fiber Laser Technologies
  • Diamond and Carbon-based Materials Research
  • Catalytic Processes in Materials Science
  • Advanced Nanomaterials in Catalysis
  • Luminescence Properties of Advanced Materials
  • Catalysts for Methane Reforming
  • Catalysis and Oxidation Reactions
  • Luminescence and Fluorescent Materials
  • Advanced Photocatalysis Techniques
  • Advanced Chemical Sensor Technologies
  • Quantum Dots Synthesis And Properties
  • High-pressure geophysics and materials
  • biodegradable polymer synthesis and properties
  • Fiber-reinforced polymer composites
  • Advanced Cellulose Research Studies
  • Atomic and Subatomic Physics Research

Eindhoven University of Technology
2024

Taizhou University
2023

Jinan University
2018-2022

Owing to the unique electronic spin properties, nitrogen-vacancy (NV) centers hosted in diamond have emerged as a powerful quantum tool for detecting various physical parameters and biological species. In this work, an optical-fiber probe, configured by chemically modifying nanodiamonds on surface of cone fiber tip, is developed. Based continuous-wave optically detected magnetic resonance method lock-in amplification technique, it found that sensing performance probes can be engineered...

10.1021/acssensors.2c00670 article EN ACS Sensors 2022-12-01

To improve the thermal, mechanical, and barrier properties of ethylene vinyl alcohol copolymer (EVOH)/aramid pulp (AP), graphene oxide (GO) was used as a compatilizer, enhancer, to fabricate EVOH-based composites.

10.1039/d2ra07182g article EN cc-by-nc RSC Advances 2023-01-01

The selection of TiO2 phase, whether anatase or rutile, for supporting small Ni clusters significantly influences the activity and selectivity in CO2 hydrogenation to methane. To model understand these...

10.1039/d4cy00586d article EN cc-by Catalysis Science & Technology 2024-01-01

Owing to the unique electronic spin properties, nitrogen-vacancy (NV) centers hosted in diamond have emerged as a powerful quantum sensor for various physical parameters and biological species. In this work, miniature optical-fiber probe, configured by chemically-modifying nanodiamonds NV on surface of cone fiber tip, is developed. Based continue-wave optically detected magnetic resonance method lock-in amplifying technique, it found that sensing performance probe can be engineered varying...

10.48550/arxiv.2202.11859 preprint EN other-oa arXiv (Cornell University) 2022-01-01
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