<?xml version="1.0" encoding="utf-8" standalone="yes"?><rss version="2.0" xmlns:atom="http://www.w3.org/2005/Atom"><channel><title>Aidan Huang | Tsinghua</title><link>https://hadhuangaidan.github.io/</link><atom:link href="https://hadhuangaidan.github.io/index.xml" rel="self" type="application/rss+xml"/><description>Aidan Huang | Tsinghua</description><generator>Wowchemy (https://wowchemy.com)</generator><language>en-us</language><lastBuildDate>Fri, 02 May 2025 00:00:00 +0000</lastBuildDate><image><url>https://hadhuangaidan.github.io/media/icon_hu2869209446613135844.png</url><title>Aidan Huang | Tsinghua</title><link>https://hadhuangaidan.github.io/</link></image><item><title>A Self-Sustainable, Ultrarobust and High-Power-Density Triboelectric Nanogenerator for In-Situ Powering of Marine Internet of Things</title><link>https://hadhuangaidan.github.io/featured_publication/a-self-sustainable/</link><pubDate>Fri, 02 May 2025 00:00:00 +0000</pubDate><guid>https://hadhuangaidan.github.io/featured_publication/a-self-sustainable/</guid><description>&lt;p>The sustainable operation of marine Internet of Things (IoT), as a critical enabler for marine resource utilization, is hindered by the lack of robust energy solutions capable of powering advanced functionalities in unpredictable oceanic environments. Here, we present a self-sustainable, highly reliable triboelectric nanogenerator system that synergizes a non-contact architecture with dynamic charge supplementation and multiphase electrode design to overcome persistent limitations in durability, energy storage, and water wave adaptability. The system achieves a 3-fold enhancement in output charge with 97% performance retention over 20 million cycles—5.2 times more durable than state-of-the art counterparts. A chaotic double-pendulum structure further broadens operational bandwidth to 0.4–1.0 Hz with the charge accumulation rate of 4.6 times, enabling record-breaking average power density of 13.53 W m⁻³ Hz⁻¹. Furthermore, an adaptive ultralow-powered (244 nW) integrated management circuit with on-demand direct current supply functionality ensures a 394-fold energy storage speed, successfully sustaining real-time GPS communication and water quality monitoring in autonomous buoys. This work establishes a scalable, maintenance-free paradigm for marine energy harvesting, directly addressing the energy paradox in IoT deployment while advancing sustainable resource management and climate resilience strategies.&lt;/p></description></item><item><title>Achieving High Power Density and Durability of Sliding Mode Triboelectric Nanogenerator by Double Charge Supplement Strategy (High cited)</title><link>https://hadhuangaidan.github.io/featured_publication/achieving-high-power/</link><pubDate>Fri, 02 Dec 2022 00:00:00 +0000</pubDate><guid>https://hadhuangaidan.github.io/featured_publication/achieving-high-power/</guid><description>&lt;p>Triboelectric nanogenerator (TENG), a promising energy harvesting technology for distributed power sources, faces inevitable issues regarding long-term wear and durability. However, current low-wear TENGs are impaired by lower performances due to low charge density. Here, we propose to address both issues using a double charge supplement TENG (DCS-TENG). Adding two low friction charge brushes allows the DCS-TENG to achieve a high surface charge density (76.5 μC m−2) and power density (697.5 mW m−2 Hz-1), setting a new record among previously reported low-wear TENGs. Moreover, the device exhibits unprecedented durability with an attenuation of only 5% after continuous operation for 110 h (3,960,000 cycles). Using a customized energy management module, a 3×7 hygrothermograph array, a high-power vehicle’s radar and accelerometer modules were stably powered, demonstrating the DCS-TENG’s strong electrical load capacity. This strategy provides a facile and effective path to conjointly boost power output and durability of TENGs, taking them to the next level for practical applications.&lt;/p></description></item><item><title>Rationally Segmented Triboelectric Nanogenerator with Constant Direct-Current Output and Low Crest Factor</title><link>https://hadhuangaidan.github.io/featured_publication/rationally-segmented-triboelectric/</link><pubDate>Thu, 22 Apr 2021 00:00:00 +0000</pubDate><guid>https://hadhuangaidan.github.io/featured_publication/rationally-segmented-triboelectric/</guid><description>&lt;p>Despite great potential of triboelectric nanogenerators (TENGs) as a promising energy harvesting technology, their practical applications are still hindered by their pulsed outputs with high crest factor. Here, through a simple and easy method involving electrode misalignment (EM) and circuit connection, an exceedingly stable direct current (DC) multi-phase TENG (MP-TENG) with a high average output power at a constant current is developed. The MP-TENG obtained by rectifying and superimposing TENG units with phase difference in parallel can realize an ultra-low crest factor of 1.05 and an average power increase of 40.1%, compared with conventional single-phase TENG. Besides, when using rotor grids with different sizes from the electrodes and EM method, the common materials in daily life such as wood and cloth fabrics have been applied to generate DC-like outputs with a crest factor of less than 1.1, which expands dramatically the selection range of TENG materials. Due to the excellent DC performance of MP-TENG, 1000 LEDs and 54 bulbs can be easily lighted up without any flickers, and commercial electronics can be driven continuously to work stably. This work provides a paradigm shift to achieve high-output constant direct-current, which has widespread application prospects in the field of energy harvesting.&lt;/p></description></item><item><title>Biomimetic hairy whiskers for robotic skin tactility</title><link>https://hadhuangaidan.github.io/featured_publication/biomimetic-hairy-whiskers/</link><pubDate>Fri, 12 Mar 2021 00:00:00 +0000</pubDate><guid>https://hadhuangaidan.github.io/featured_publication/biomimetic-hairy-whiskers/</guid><description>&lt;p>Touching sensing is among the most important sensing capabilities of a human, so is for smart robotics. Current researches on tactile sensors are mainly concentrated on electronic skin, but it is prone to be easily dirtied, damaged, and disturbed after repeated usage, which greatly limits its practical applications in robotics. Here, by mimicking the way that animals explore the environment using hair-based sensors, we designed a bendable biomimetic whisker mechanoreceptor (BWMR) for robotic tactile sensing. Owing to the advantages of triboelectric nanogenerator technology, the BWMR can convert external mechanical stimuli into electrical signals without power supply, which is conducive to its widespread applications in robots. Because of the leverage effect of the whisker, the BWMR can distinguish an exciting force of 1.129 μN by amplifying external weak signals, which can be further improved by increasing the whisker length. Real time sensing has been demonstrated using BWMR for exhibiting its potential for robotic tactile system.&lt;/p></description></item><item><title/><link>https://hadhuangaidan.github.io/admin/config.yml</link><pubDate>Mon, 01 Jan 0001 00:00:00 +0000</pubDate><guid>https://hadhuangaidan.github.io/admin/config.yml</guid><description/></item><item><title>Path and Experience</title><link>https://hadhuangaidan.github.io/experience/</link><pubDate>Mon, 01 Jan 0001 00:00:00 +0000</pubDate><guid>https://hadhuangaidan.github.io/experience/</guid><description>&lt;h2 id="education">Education&lt;/h2>
&lt;h4 id="since-092023">Since 09/2023&lt;/h4>
&lt;p>PhD Candidate in Sociology,&lt;/p>
&lt;p>Institute for International and Area Studies, Tsinghua University, Beijing&lt;/p>
&lt;h4 id="092018--062021">09/2018 – 06/2021&lt;/h4>
&lt;p>Master’s degree in international public policy,&lt;/p>
&lt;p>School of International Relations and Public Affairs, Fudan University, Shanghai&lt;/p>
&lt;h4 id="092014--062018">09/2014 – 06/2018&lt;/h4>
&lt;p>Bachelor’s degree in international politics,&lt;/p>
&lt;p>School of International Relations and Public Affairs, Fudan University, Shanghai&lt;/p>
&lt;h2 id="visiting-appointments--research-affiliations">Visiting Appointments / Research Affiliations&lt;/h2>
&lt;h4 id="since-092025">Since 09/2025&lt;/h4>
&lt;p>Ministry of Public Health, Chad&lt;/p>
&lt;h4 id="since-082025">Since 08/2025&lt;/h4>
&lt;p>Harvard T.H. Chan School of Public Health&lt;/p>
&lt;h4 id="092024--082025">09/2024 – 08/2025&lt;/h4>
&lt;p>Department of Government, Harvard University&lt;/p>
&lt;h4 id="092019--122019">09/2019 – 12/2019&lt;/h4>
&lt;p>Graduate Institute of International and Development Studies (IHEID), Geneva&lt;/p>
&lt;h2 id="professional-experience">Professional Experience&lt;/h2>
&lt;h4 id="092021--082023">09/2021 – 08/2023&lt;/h4>
&lt;p>Full-time Research Assistant,&lt;/p>
&lt;p>Vanke School of Public Health, Tsinghua University, Beijing&lt;/p>
&lt;h4 id="122018--102020">12/2018 – 10/2020&lt;/h4>
&lt;p>Intern, Foreign Affairs Office of the Shanghai Municipal Government&lt;/p>
&lt;h4 id="032019--062019">03/2019 – 06/2019&lt;/h4>
&lt;p>Intern, UNESCO Asia-Pacific Regional Bureau, Bangkok&lt;/p>
&lt;h4 id="032018--072018">03/2018 – 07/2018&lt;/h4>
&lt;p>Intern, Lancang–Mekong Water Resources Cooperation Center, Beijing&lt;/p></description></item><item><title>Research Publications</title><link>https://hadhuangaidan.github.io/research-publication/</link><pubDate>Mon, 01 Jan 0001 00:00:00 +0000</pubDate><guid>https://hadhuangaidan.github.io/research-publication/</guid><description>&lt;p>My research primarily centers on global health and development, local ownership, and sustainability. Most of my work draws on interviews and observations conducted in China and across African contexts, as well as the analysis of project archives, policy documents, and field-based materials.&lt;/p>
&lt;p>Huang, A., Zhao, Y., Cao, C., Lyu, M., &amp;amp; Tang, K. (2024). &lt;a href="https://doi.org/10.1136/bmjgh-2023-012853" target="_blank" rel="noopener">Integrating interventions supported by development assistance for health into local health system: Evidence from a China–World Bank–UK rural health system strengthening project (1998–2007)&lt;/a>. BMJ Global Health, 9(5), e012853.&lt;/p>
&lt;p>Huang, A., Cao, C., Zhao, Y., Soselia, G., Uchaneishvili, M., Chikovani, I., Gotsadze, G., Lyu, M., &amp;amp; Tang, K. (2024). &lt;a href="https://doi.org/10.1093/heapol/czad088" target="_blank" rel="noopener">External technical assistance and its contribution to donor transition and long-term sustainability: Experience from China and Georgia&lt;/a>. Health Policy and Planning, 39(Supplement_1), i137–i144.&lt;/p>
&lt;p>Chikovani, I., Soselia, G., Huang, A., Uchaneishvili, M., Zhao, Y., Cao, C., Lyu, M., Tang, K., &amp;amp; Gotsadze, G. (2024). &lt;a href="https://doi.org/10.1093/heapol/czad098" target="_blank" rel="noopener">Adapting national data systems for donor transition: Comparative analysis of experience from Georgia and China&lt;/a>. Health Policy and Planning, 39(Supplement_1), i9–i20.&lt;/p>
&lt;p>Huang, A., Zhao, Y., Cao, C., Lyu, M., &amp;amp; Tang, K. (2024). &lt;a href="https://doi.org/10.1186/s41256-024-00344-3" target="_blank" rel="noopener">Development assistance, donor–recipient dynamic, and domestic policy: A case study of two health interventions supported by World Bank–UK and Global Fund in China&lt;/a>. Global Health Research and Policy, 9(1), 7.&lt;/p>
&lt;p>Huang, A., Cao, C., Xiao, A. Y., Karemere, H., Molima E. Christian, Nicolas, K. K., Xue, M., &amp;amp; Tang, K. (2023). &lt;a href="https://doi.org/10.1186/s12992-023-00934-9" target="_blank" rel="noopener">Opportunities and challenges of trilateral South‒South cooperation for transforming development assistance for health: Evidence from a DRC–UNICEF–China maternal, newborn, and child health project&lt;/a>. Globalization and Health, 19(1), 37.&lt;/p>
&lt;p>Huang, A., Lin, Y., Zhang, L., Dong, J., He, Q., &amp;amp; Tang, K. (2022). Assessing health governance across countries: &lt;a href="https://doi.org/10.1136/bmjopen-2022-063866" target="_blank" rel="noopener">A scoping review protocol on indices and assessment tools applied globally&lt;/a>. BMJ Open, 12(7), e063866.&lt;/p>
&lt;p>黄爱丹：《&lt;a href="https://mp.weixin.qq.com/s/h3LtPuh499OukDfx0_HPHQ" target="_blank" rel="noopener">多边合作促非洲实现卫生公平&lt;/a>》，《中国投资》，2021年第5期。&lt;/p>
&lt;p>[津巴布韦] 伦纳德·奇通戈：《&lt;a href="https://ias.zjnu.edu.cn/_upload/article/files/30/92/e09a86a141f9a75755fc1667b7ad/e0aa3ba0-3372-466f-ba71-7ba67b7a829b.pdf" target="_blank" rel="noopener">工业发展的国内资源动员——以南部非洲发展共同体国家为例&lt;/a>》，黄爱丹、姜璐（译），《非洲研究》，2018年第1卷，第120~133页。&lt;/p></description></item><item><title>公共写作</title><link>https://hadhuangaidan.github.io/writing/</link><pubDate>Mon, 01 Jan 0001 00:00:00 +0000</pubDate><guid>https://hadhuangaidan.github.io/writing/</guid><description>&lt;h2 id="学术短文">学术短文&lt;/h2>
&lt;p>黄爱丹：《&lt;a href="https://iias.tsinghua.edu.cn/fj/qydt/shlynfzdq/qydt_shlynfz_2023_06_d2.pdf" target="_blank" rel="noopener">赋权女性：美国基于信仰的组织在非洲的案例与叙事&lt;/a>》，清华大学国际与地区研究院《区域动态（撒哈拉以南非洲）》，2023年6月第2期。&lt;/p>
&lt;p>黄爱丹：《&lt;a href="https://iias.tsinghua.edu.cn/__local/4/EA/CB/0BCF664DFF41175AAFCFA101DB6_F6E3F8E2_CFE82.pdf?e=.pdf" target="_blank" rel="noopener">美国在非洲的总统防治艾滋病紧急救援计划&lt;/a>》，清华大学国际与地区研究院《区域动态（撒哈拉以南非洲）》，2023年4月第1期。&lt;/p>
&lt;p>黄爱丹：《&lt;a href="https://iias.tsinghua.edu.cn/__local/1/2C/95/EC57A9781CB98BA679271CC93F6_F1787FEE_117073.pdf?e=.pdf" target="_blank" rel="noopener">美国军方在非洲的全球卫生参与&lt;/a>》，清华大学国际与地区研究院《区域动态（撒哈拉以南非洲）》，2023年2月第2期。&lt;/p>
&lt;p>黄爱丹、杨清、朱思窈：《&lt;a href="https://mp.weixin.qq.com/s/BCWzm4lavKRHCTaSs_sxAg" target="_blank" rel="noopener">当疫情超越国界：各自为战还是联手行动？&lt;/a>》，复旦国际发展知识，2020年2月7日。&lt;/p>
&lt;h2 id="报道作品">报道作品&lt;/h2>
&lt;p>黄爱丹、曾艺：《&lt;a href="https://news.fudan.edu.cn/2019/0124/c4a97778/page.htm" target="_blank" rel="noopener">第四届澜沧江-湄公河流域治理与发展 青年创新设计大赛决赛在柬埔寨开幕&lt;/a>》，复旦大学新闻，2019年1月24日。&lt;/p>
&lt;h2 id="个人自述">个人自述&lt;/h2>
&lt;p>黄爱丹：《&lt;a href="https://mp.weixin.qq.com/s/8m_P1g0AcmdH5a6X6kJOWA" target="_blank" rel="noopener">黄爱丹：曼谷的热与理想的热都触手可及&lt;/a>》，复旦国协FDG2IO，2019年10月30日。&lt;/p>
&lt;p>黄爱丹：《&lt;a href="https://mp.weixin.qq.com/s/VrtVBUUBgQ4HA6EhhmmsXQ" target="_blank" rel="noopener">观照本心 砥砺前行｜黄爱丹：爱己爱人心，求知良善行&lt;/a>》，复旦卿云歌，2017年11月30日。&lt;/p>
&lt;p>黄爱丹：《&lt;a href="https://mp.weixin.qq.com/s/8wKjiKHEjp3B_1rBTrEaqw" target="_blank" rel="noopener">国务人·负箧游丨黄爱丹：日内瓦流浪者&lt;/a>》，烹小鲜的国务青年，2020年2月17日。&lt;/p>
&lt;h2 id="同名个人微信公众号部分作品">同名个人微信公众号部分作品&lt;/h2>
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&lt;img src="https://hadhuangaidan.github.io/images/r1.jpg" style="" />
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&lt;p style="text-align: center;">欢迎关注我的个人微信公众号“黄爱丹”&lt;/p>
&lt;p>《&lt;a href="https://mp.weixin.qq.com/s/R-rtJKoJxYH1jKjv5BgNzw" target="_blank" rel="noopener">守护灵气有多难？&lt;/a>》，2025年4月7日。&lt;/p>
&lt;p>《&lt;a href="https://mp.weixin.qq.com/s/R-rtJKoJxYH1jKjv5BgNzw" target="_blank" rel="noopener">把人生选择和命运结合起来&lt;/a>》，2022年1月24日。&lt;/p>
&lt;p>《&lt;a href="https://mp.weixin.qq.com/s/-dXRxOWRUO6s25bWAMx9hQ" target="_blank" rel="noopener">毕业遐思：卷与反卷，批判与反批判&lt;/a>》，2021年5月29日。&lt;/p>
&lt;p>《&lt;a href="https://mp.weixin.qq.com/s/U4MjB8ouGL_bzmuaeR3CkQ" target="_blank" rel="noopener">在日内瓦高等国际关系与发展研究院交换三个月&lt;/a>》，2020年1月28日。&lt;/p>
&lt;p>《&lt;a href="https://mp.weixin.qq.com/s/HbynRJfhfhtcAKxVk524FQ" target="_blank" rel="noopener">观照 | 才知12.03是国际残疾人日&lt;/a>》，2017年12月3日。&lt;/p></description></item><item><title>媒体报道</title><link>https://hadhuangaidan.github.io/media/</link><pubDate>Mon, 01 Jan 0001 00:00:00 +0000</pubDate><guid>https://hadhuangaidan.github.io/media/</guid><description>&lt;p>科技日报（微博/Bilibili）：《&lt;a href="https://www.bilibili.com/video/BV1nB4y187tc/" target="_blank" rel="noopener">我是科研助理丨黄爱丹：扬帆起航，助力全球卫生&lt;/a>》，2022年7月19日。&lt;/p>
&lt;p>杜慧：《&lt;a href="https://news.fudan.edu.cn/_upload/article/files/7b/72/fcfbd31345ce97c63384eedf27b9/c1b065e6-527f-474b-8d21-d20e4b59b230.pdf" target="_blank" rel="noopener">黄爱丹：国箴务实 卓越为公&lt;/a>》，《复旦》，新编第1134期，2018年5月9日。&lt;/p>
&lt;p>复旦大学学生会（微信公众号）：《&lt;a href="https://mp.weixin.qq.com/s/9_Rkgenkdd78CMlo7-UuRg" target="_blank" rel="noopener">青年之声 | 无障碍设施更新：象牙塔里的协商治理实践&lt;/a>》，2017年10月14日。&lt;/p>
&lt;p>吴梦如：《&lt;a href="https://mp.weixin.qq.com/s/7oXjQNVuI9d8lHdQ6s_j4A" target="_blank" rel="noopener">聚焦 | 无障碍设施改造：为你造一条平坦之路&lt;/a>》，复旦人周报（微信公众号），2017年10月18日。&lt;/p></description></item></channel></rss>