杨老师的研究时间线(目录篇)
通过梳理杨老师发的11篇论文和通过检索他ORCID以及在scopus上的作者往期文章记录的时候,把老师作为一作和通讯的文章也都下载速览一下就可以将杨老师的研究根据工作单位的不同(能展现的应用场景不同)分为三个阶段。美好的祝愿在于希望他能在HITSZ开启关于低空学科的第四个应用场景,不过目前来看他还是在寻找大水池哈哈哈。 根据某网站的简历介绍,杨老师在2017年在欧洲微电子研究中心及根特大学获得电子工程博士学位,在比利时的美好时光里,他的导师似乎接了个欧洲飞机结构健康评估项目(European Aircraft Integrated Structural Health Assessment II(AISHA II)项目,然后要研究飞机复材零件的固化过程,所以老师的论文从研究柔性可拉伸S型铜导线,到固化过程的传感响应,再到单个模块化小型传感器,最后形成复材固化过程的阵列传感,留下了这些文稿:(筛选关键人物为:Vanfleteren, J.)
| 作者 + 年份+(Journal)+DOI | Title | 概要 |
|---|---|---|
| Yang, Y., et al. (2014). Procedia Technology.DOI:10.1016/j.protcy.2014.09.024. | Development of a Dielectric Sensor System for the On-line Cure Monitoring of Composites | C |
| Vanfleteren, J., et al. (2015).DOI.10.1557/opl.2015.660. | Free-form 2.5D thermoplastic circuits using one-time stretchable interconnections | C |
| Yang, Y., et al. (2015).DOI:10.1557/opl.2015.790. | Deformable microsystem for in Situ cure degree monitoring of GFRP (glass fiber reinforced plastic) | C |
| Chiesura, G., et al. (2016). Sensors (Switzerland).DOI:10.3390/s16060866. | RTM production monitoring of the A380 hinge armdroop nose mechanism: A multi-sensor approach | C |
| Plovie, B., et al. (2016).DOI:10.1109/IMPACT.2016.7799996. | One-time deformable thermoplastic devices based on flexible circuit board technology | C |
| Yang, Y., et al. (2016). Sensors and Actuators, A: Physical.DOI:10.1016/j.sna.2016.03.015. | Design and fabrication of a flexible dielectric sensor system for in situ and real-time production monitoring of glass fibre reinforced composites | C |
| Yang, Y., et al. (2016). Journal of Polymer Science, Part B: Polymer Physics.DOI:10.1002/polb.24101. | Design and fabrication of a shielded interdigital sensor for noninvasive In situ real-time production monitoring of polymers | C |
| Yang, Y., et al. (2016). Nano Research.DOI:10.1007/s12274-015-0921-9. | Facile fabrication of stretchable Ag nanowire/polyurethane electrodes using high intensity pulsed light | 两位大导的交汇点 |
| Yang, Y., et al. (2016).DOI:10.1109/ICSENS.2016.7808879. | Capacitive sensor network for composites production monitoring | C |
| Yang, Y., et al. (2016).DOI:10.1201/b19381-49. | Non-destructive evaluation of an infusion process using capacitive sensing technique | C |
| Plovie, B., et al. (2017). Advanced Engineering Materials.DOI:10.1002/adem.201700032. | Arbitrarily Shaped 2.5D Circuits using Stretchable Interconnects Embedded in Thermoplastic Polymers | C |
| Yang, Y., et al. (2018). ACS Sens.DOI:10.1021/acssensors.8b00425. | Design and Integration of Flexible Sensor Matrix for in Situ Monitoring of Polymer Composites | C |
| Yang, Y., et al. (2018). Advanced Electronic Materials.DOI:10.1002/aelm.201800071. | 3D Multifunctional Composites Based on Large-Area Stretchable Circuit with Thermoforming Technology | C |
| Yang, Y., et al. (2018). Sensors and Actuators B: Chemical.DOI:10.1016/j.snb.2018.01.141. | Multifunctional and miniaturized flexible sensor patch: Design and application for in situ monitoring of epoxy polymerization | C |
| Plovie, B., et al. (2019). IEEE Transactions on Components, Packaging and Manufacturing Technology.DOI:10.1109/TCPMT.2019.2906115. | Stretchable mold interconnect optimization: Peeling automation and carrierless techniques | C |
| Yang, Y., et al. (2021). IEEE Transactions on Instrumentation and Measurement.DOI:10.1109/TIM.2021.3057291. | Fully Integrated Flexible Dielectric Monitoring Sensor System for Real-Time in Situ Prediction of the Degree of Cure and Glass Transition Temperature of an Epoxy Resin | C |
还有两篇在互联网上搜不到,要用UGent的账号在内部图书馆看(你看我像有账号的样子吗),即:
1. In situ on-line cure monitoring of composites by embedded interdigital sensor
2. Cure degree monitoring of an infusion process by deformable electronic circuit with integrated capacitive sensors
接下来是2017年至2018年作为日本学术振兴会(JSPS基金资助)特别研究员于日本大阪大学从事博士后研究工作,筛选关键人物为: Suganuma, K.,由于这位和Vanfleteren, J.在[Yang, Y., et al. (2016). Nano Research.DOI:10.1007/s12274-015-0921-9.]中作为共同作者出现,经线下考证,杨老师说此地生活非常愉快,唯一的遗憾就是博后工资不如老美高。
| 作者 + 年份+(Journal)+DOI | Title | 概要 |
|---|---|---|
| Li, W., et al. (2018). Advanced Materials Interfaces.DOI:10.1002/admi.201800798. | Highly Densified Cu Wirings Fabricated from Air-Stable Cu Complex Ink with High Conductivity, Enhanced Oxidation Resistance, and Flexibility | C |
| Zhou, K. L., et al. (2018). ACS Applied Materials and Interfaces.DOI:10.1021/acsami.8b12238. | Highly Stable Transparent Conductive Electrodes Based on Silver-Platinum Alloy-Walled Hollow Nanowires for Optoelectronic Devices | F |
| Li, C. F., et al. (2019). ACS Applied Materials and Interfaces.DOI:10.1021/acsami.8b19069. | Highly Conductive Ag Paste for Recoverable Wiring and Reliable Bonding Used in Stretchable Electronics | F |
| Li, W., et al. (2019). ACS Applied Materials and Interfaces.DOI:10.1021/acsami.8b18670. | Three-Dimensional Stretchable and Transparent Conductors with Controllable Strain-Distribution Based on Template-Assisted Transfer Printing | F |
| Zhang, B., et al. (2019). Inorganic Chemistry.DOI:10.1021/acs.inorgchem.8b03460. | Large-Scale and Galvanic Replacement Free Synthesis of Cu@Ag Core-Shell Nanowires for Flexible Electronics | F |
| Zhang, B., et al. (2019). ACS Applied Materials and Interfaces.DOI:10.1021/acsami.9b04169. | Alloying and Embedding of Cu-Core/Ag-Shell Nanowires for Ultrastable Stretchable and Transparent Electrodes | F |
| Zhang, B., et al. (2019). Journal of Materials Science.DOI:10.1007/s10853-019-03333-x. | Fully embedded CuNWs/PDMS conductor with high oxidation resistance and high conductivity for stretchable electronics | F |
| Zhang, Z., et al. (2019). Journal of Alloys and Compounds.DOI:10.1016/j.jallcom.2018.11.251. | Low-temperature and pressureless sinter joining of Cu with micron/submicron Ag particle paste in air | F |
| Li, W., et al. (2022). Corrosion Science.DOI:10.1016/j.corsci.2022.110269. | Supersaturated solid-solution interfaces of Cu core/Ag shell structures with enhanced thermal stability and oxidation resistance | F |
然后就是在回国之前的最后一段博后时光了,2018年至2020年先后作为博士后、电子工程师(正式职位)在美国西北太平洋国家实验室从事研究(感慨也是赶上不迫害老中科研工作者的尾巴了,从2021年开始国防七子甚至都没法去老美留学了)
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| A | B | C |
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2020年全职回国,当前主要从事海洋电子方面的研究工作。工作重点是微米或纳米量级电子、传感器、驱动器的研发及制备,用于海洋生物、海洋环境监测及海洋能源开发。
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希望杨老师实现他的学术理想)不断更新中...
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