
周广军,男,工学博士,教授,主要研究领域:(1)基于生物医学光电信息功能材料的传感设计及其在细胞成像、分子标记和分析检测领域的应用;(2)新型高效发光半导体量子点、石墨烯量子点以及钙钛矿量子点的制备及其生物医学应用。尤其在生物化学传感设计、荧光能量共振、能量转移/迁移和交叉弛豫以及等离子效应等发光机理研究方面取得了创新性成果。主持国家自然科学基金面上项目、山东省自然科学基金、留学回国人员科研启动基金以及其他纵向/横向课题多项。
联系方式
电话:0531-88361206
邮箱:gjzhou@sdu.edu.cn
学习与工作经历
2009/12–至今,山东大学晶体材料研究院/晶体材料全国重点实验室,教授
2008/9–2009/9,日本产业技术综合研究所,光技术研究中心,访问学者
2006/9–2009/11,山东大学晶体材料研究所/晶体材料国家重点实验室,副教授
2003/9–2006/6,山东大学,材料学,博士
1992/9–1995/6,山东大学化学与化工学院,分析化学,硕士
1986/9–1990/6,山东大学化学学院,化学,学士
奖励情况
1. 周广军,吕孟凯,杨忠森,王淑芬,修志亮,“新型纳米发光材料的控制合成及其光学性质的研究”,2007,山东高等学校优秀科研成果奖。
2. 李春忠,顾锋,吕孟凯,朱以华,周广军,程起林,王淑芬,杨化桂,杨晓玲,“基于化学工程原理与方法的纳米材料合成与结构调控”,教育部高等学校科学研究优秀成果奖(科学技术),2011,自然科学奖一等奖。
作为通讯作者发表的代表性论文
1. Fluorescence and colorimetric dual-signal sensing of resveratrol and ascorbic acid based on NaYF₄:Yb,Er@NaYF₄upconversion nanoparticles,Microchimica Acta,2026, 193, 369.
2. Multiplex Detection of Cd2+, Hg2+, Glutathione, and Ascorbic Acid Using NaYF4:Yb,Er@NaYF4Core–Shell Upconversion Nanoparticles and Trithiocyanuric Acid-Modified Gold Nanoparticles,ACS Applied Nano Materials,2025, 8, 8054.
3. Portable upconversion-based hydrogel sensors for visual quantitative detection of HOCl,Journal of Material Chemistry C,2025, 13, 13962.
4. Linearly Polarized Broadband Emission and Multiwavelength Lasing in Solution-Processed Quantum Dots,Advanced Materials,2024, 2403017.
5. Ratiometric fluorescent sensor with large pseudo-Stokes shifts for precise sensing and imaging of pH without interferential background fluorescence,Talanta266 (2024) 125041.
6. Enhanced Long-Term Luminescent Stability through Near-Single-Dot Passivation and Encapsulation of Perovskite Quantum Dots for Printable Photonics,SmallStructures,2023, 2200391.
7. Luminescence, energy transfer, colour modulation and up-conversion mechanisms of Yb3+, Tm3+and Ho3+co-doped Y6MoO12,RSC Advances, 2022, 12, 33419.
8. Blue/red ratiometric pH sensors without background signals based on 808 nm-excited core–triple shell up-conversion nanoparticles,Journal of Material Chemistry C,2021, 9, 17451.
9. Upconversion photoluminescent Yb(Ⅲ)/Er(Ⅲ) doped nanoparticles interact with AuNPs for detection of Cr (Ⅲ) and sodium tripolyphosphate based on FRET,OpticalMaterials,2022,128, 112392.
10. Warm white-light emitting silicafilms prepared using lead-free double perovskite QDs,Dalton Transaction,2021,50,9804.
11. Inner filter effect between upconversion nanoparticles and Fe(II)–1,10-phenanthroline complex for the detection of Sn(II) and ascorbic acid(AA),RSC Adances, 2021, 11, 17212.
12. Upconversion luminescence enhancement ofβ-NaYF4: Er3+/Ho3+by introducing Ca2+and multicolor tuning by 980 nm pulse excited,Materials Science & Engineering B,2020, 261, 114674.
13. Fluorescence resonance energy transfer between NH2–NaYF4:Yb,Er/NaYF4@SiO2upconversion nanoparticles and gold nanoparticles for the detection of glutathione and cadmium ions.Talanta,2020, 207, 120294.
14. Bottom-up synthesis and structural design strategy for graphene quantum dots with tunable emission to near infrared region,Carbon,2019,142,673.
15. Fluorometric determination of antioxidant capacity in human plasma by using upconversion nanoparticles and an inner filter effect mechanism.Microchimica Acta,2019, 186, 502.
16. Identification of surface-passivating ligands and core-size-dependent CdSe/CdZnS with highly emitting for cell labeling.Physica E: Low-dimensional Systems and Nanostructures,2019, 112, 142.
17. 808 nm Excited Multicolor Upconversion Tuning through Energy Migration in Core−Shell−Shell Nanoarchitecture,The Journal of Physical Chemistry C,2018,122, 10113.
18. Optical-magnetic bifunctional property and mechanistic insight on upconversion NaYF4: Yb, Ho, Tm@NaGdF4with tunable nanodumbbell morphology,Physical Chemistry Chemical Physics,2017, 19, 31675.
19. Enhanced anti-stokes luminescence in LaNbO4:Ln3+(Ln3+/ Yb3+, Er3+/Ho3+/Tm3+) with abundant color,RSC Advances,2017, 7, 16777.
20. Luminescence, energy transfer, and up-conversion mechanisms of Yb3+and Tb3+co-doped LaNbO4,Journal of Alloys and Compounds,702 (2017) 209-215.
21. Color tunable up-conversion emission from ZrO2:Er3+,Yb3+textile fibers,RSC Advances,2016, 6, 103973.
22. Mechanistic investigation on up and down conversion of Er3+and Gd3+co-doped YTiNbO6Phosphors,RSC Advances,2015, 5, 94607.
23. Wide emission-tunable CdTeSe/ZnSe/ZnS core–shell quantum dots and their conjugation with E. coli O-157.Materials Research Bulletin,2015, 65, 53–60.
24. Combustion synthesis and photoluminescence properties of a novelblue-green-emitting Er3+and Li+co-doped LaNbTiO6.Materials Science and Engineering B,2015, 191, 21–27.
25. High luminescent core–shell QDs based onnoninjection synthesized CdSe QDs: observation of magic sized CdSe quantum dots.RSC Advances,2014, 4, 42316.
26. Energy transfer from Bi3+to Ho3+triggers brilliant single green light emission in LaNbTiO6:Ho3+, Bi3+phosphors.RSC Advances,2014, 4, 13680.
27. Enhanced luminescence of novel Y2Zr2O7:Dy3+phosphors by Li+co-doping,Journal of Alloys and Compounds,552 (2013) 152–156.
28. Combustion synthesis and photoluminescence properties of CaZrO3:Eu3+with highly enhanced brightness by Li+ doping,Journal of Luminescence,137 (2013) 83–87.
29. Novel multiband luminescence of Y2Zr2O7:Eu3+, R3+(R=Ce, Bi) orange–red phosphors via a sol–gel combustion approach,Optical Materials,35 (2012) 257–262.