| 查看: 1260 | 回复: 19 | |||
| 【有奖交流】积极回复本帖子,参与交流,就有机会分得作者 Langhorne 的 13 个金币 ,回帖就立即获得 1 个金币,每人有 1 次机会 | |||
| 当前只显示满足指定条件的回帖,点击这里查看本话题的所有回帖 | |||
[交流]
巴黎大学Benoit Limoges 课题组招2022 CSC 博士生 - Zn-Organic Battery
|
|||
|
单位:University of Paris 实验室:Laboratoire d’Electrochimie Moléculaire分子电化学实验室(LEM) 要求:化学、材料或者物理背景,2022年7月份取得硕士学位,最好有托福或雅思成绩(英语B1水平),CSC(公派)项目留学生。 本课题研究方向为生命分析,Benoit Limoges 教授为ED388博士生院在巴黎大学的主要负责人,导师认真负责,关心留学生,不论在科研还是生活都给了大家很多帮助。并且该课题在组里进展良好,文章质量和数量一直不错,所以对想出国读博的同学是很好的机会。 The PhD candidate will be part of the team « MER » (Electroanalytical methodologies and reactivity). A strong expertise of the team is the understanding of the electron transfer/charge transport echanisms in mesoporous and/or nanostructured semiconductive metal oxide electrodes (TiO2, SnO2, MnO2, ITO, …). In the recent years, the team has progressively oriented its research activities towards the conception and characterization of innovative rechargeable aqueous batteries. CSC资助合同期限:36个月 联系方式:Benoit Limoges limoges@u-paris.fr Batiment Lavoisier - 7ème étage - Case 7107 15, rue Jean-Antoine de Baïf 75205 PARIS CEDEX 13 - FRANCE 研究计划如下,更详细的可以查阅附件或者邮件询问导师。 Title: Design of highly efficient molecular probes for exponential signal amplification: towards the development of ultrasensitive bioanalytical assays. Keywords:Physical sciences and Engineering Description of subjet: General Context: An increasing concern regarding the global environment and energy sustainability is driving research and development of clean energy storage technologies. Currently, lithium-ion batteries (LIBs), which operate through the reversible insertion of Li ions into an oxide cathode and a graphite anode, are the most prominent candidate, being commercially used in numerous portable electronic devices and electric vehicles (EVs).1 It is expected that the number of LIBs used will exponentially rise as the EV market grows and the utility industry begins to adopt LIBs. Because of this, there is growing concern surrounding not only the availability of Li but also the accessibility of heavy metal ions (i.e., cobalt and nickel) included in the metal oxide cathodes, which would impact the sustainability and cost of LIBs.2 For this reason, other battery chemistries that utilize cheaper and earth abundant elements are sought after as “beyond Li-ion” technologies. Among those, rechargeable batteries based on the reversible insertion of multivalent ions such as Ca2+, Mg2+, Zn2+, Al3+ into organic electrode materials have attracted considerable attention in recent years.3 The main advantage of these hybrid battery chemistries is an access to low-cost and eco-sustainable electrochemical storage systems, made from abundant, non-toxic, and easily recyclable elements. In particular, aqueous zinc-ion batteries (ZIBs) pairing a zinc metal anode with an organic redox-active cathodes in an aqueous electrolyte are considered among the most promising candidates for the development of low-cost energy storages at the grid-scale level.3a,c The key advantages of a Zn metal anode is that it can deliver a high specific capacity (820 mAh g?1) as well as a high volumetric capacity (5851 mAh cm?3). In addition, zinc is abundant, cheap, nontoxic, and easy to process. Moreover, in contrast to other multivalent metal ions, its reducing potential is sufficiently high (E0 = ?0.76 V vs. NHE) for allowing its reversible electroplating in an aqueous electrolyte without significant interference of the hydrogen evolution reaction. In addition, water-based electrolytes are intrinsically safe and do not rely heavily on battery management systems, thereby providing robustness and cost advantages over competing lithium-ion batteries that use volatile and toxic organic electrolytes.3 For this reason, the coupling of zinc before these aqueous batteries become practically feasible. One major problem with MV ions is their sluggish diffusion kinetics in solid-state insertion hosts, which can translate into a lack of appreciable electrochemical activity. Another problem is that, similar to what has been reported for inorganic materials, many papers report a charge storage mechanism involving Zn2+ as the inserting species to compensate for the negative charges generated in the organic cathode material.3 However, an increasing number of studies, including our own,4 have recently reported that the observed promising electrochemical performance in aqueous Zn-ion systems, is in fact mostly due to the insertion of protons rather than MV ions into the cathode, making them technically a proton hybrid battery. This misidentification of the charge carrier ions imposes severe consequences on the research and development in the MIB field. Therefore, it calls for further research to definitely clarify the actual ionic species involved as charge carriers in rechargeable aqueous zinc/organic battery. Research project: The main objective of the present PhD project is to better understand the charge storage mechanism of aqueous rechargeable zinc/organic hybrid batteries and to elucidate the true nature of the charge carriers involved in the reversible insertion process at the positive organic electrode. It is thus by essence a fundamental research project. To do so, we will first investigate composite electrodes based on model redox-active compounds (quinones) that we will characterize not only by different electrochemical techniques (galvanometry, cyclic voltammetry, spectroelectrochemistry, etc...), but also by different material characterization techniques (XPS, XRD, in operando Raman spectroscopy, NMR, SEM, ...). In a second step, we will examine the charge storage mechanism with respect to organic redox-active polymers, which have the merit of being less subject to dissolution in aqueous electrolytes. In parallel, aqueous electrolytes of different nature, pH and concentration will be examined, up to so-called water-in-salt electrolytes. Expected skills of the PhD candidate: To have a good knowledge in electrochemistry, electrochemical charge storage systems, electrode materials, material chemistry and material characterization. To have also a strong interest for the field of battery. References: [1] Manthiram, A., Nat. Commun. 2020, 11, 1550. [2]. Grey, C. P.; Tarascon, J. M. Nat. Mater., 2017, 16, 45?56. [3] (a) K. Qin, J. Huang, K. Holguin, C. Luo, Energy Environ. Sci., 2020, 13, 3950-3992. (b) P. Poizot, J. Gaubicher, S. ven Renault, L. Dubois, Y. Liang, Y. Yao, Chem. Rev., 2020, 120, 14, 6490–6557. (c) J. Huang, X. Dong, Z. Guo, Y. Wang, Angew. Chem. Int., 2020, 59, 18322-18333. [4] (a) V. Balland, M. Mateo, A. Singh, C. Laberty-Robert, K. D. Harris, B. Limoges. Small, 2021, 17, 2101515. (b) N. Makivic, J-Y. Cho, K. D. Harris, J-M. Tarascon, B. Limoges, V. Balland, Chem. Mater., 2021, 33, 3436–3448. (c) M. Mateos, N. Makivic, Y-S. Kim, B. Limoges, V. Balland, Adv. Energ. Mater., 2020, 3, 7610–7618. (d) Y-S. Kim, K. D. Harris, B. Limoges, V. Balland, Chem. Sci., 2019, 10, 8752–8763. (e) Mateos, K. D. Harris, B. Limoges, V. Balland, ACS Applied Energy Materials, 2020, 3, 8, 7610–7618 |
» 猜你喜欢
材料工程269求调剂
已经有6人回复
学硕材料275调剂
已经有5人回复
304分材料专硕求调剂
已经有6人回复
化学 0703求调剂 总分293 一志愿211
已经有5人回复
085701环境工程 求调剂
已经有3人回复
264求调剂
已经有7人回复
085600 材料与化工 298
已经有8人回复
266求调剂
已经有5人回复
0854总分272
已经有6人回复
EST拒稿重投
已经有3人回复
» 本主题相关商家推荐: (我也要在这里推广)
» 抢金币啦!回帖就可以得到:
课题组接收高分子材料和化学学科背景的硕士调剂
+1/187
Alicat多功能流量控制的气体混配技术- 艾里卡特 (Alicat)
+2/92
智能材料创制/超分子化学/柔性光电子材料方向招收研究生
+2/76
沈阳理工大学材料科学与工程学院——张承昕副教授招生
+2/76
(目前仅考虑招收报考南理工化院的考生,调剂的先等等)赵健课题组硕士招生
+1/39
西安工业大学庞教授课题组招收申请考核制 2026级学术博士生(电子/材料/物理/化学等)
+1/37
齐鲁工业大学轻工学部博导课题组招收两名硕士调剂生
+1/35
徐工-环境工程学院-招收调剂硕士
+1/12
长江大学农学院 2026 硕士招生
+1/11
【接收调剂】澳科大诚招2026年秋季硕士研究生(3月5日下午18:00截止)
+1/11
26 fall & 27 spring考博求助,控制/机器人/人工智能方向
+1/11
福建师范大学 院士团队 招2026级博士(光电器件、物理、化学、纳米材料方向)
+1/9
西南科技大学2026年博士研究生招生
+1/7
LiOH高温烧结
+1/6
277求调剂
+1/4
硕博招生(博士还有一个名额 硕士还有很多,老师不养鱼,组内经费充足!)
+1/4
诚邀加盟!青岛大学郑晓钦教授团队诚招博士研究生、博士后及青年英才
+1/4
清华大学深圳国际研究生院张旻课题组招收2027级博士生_机械、仪器方向
+1/4
中国科学院大学化学科学学院:接收有机化学专业调剂生(限报考中科院系统考生)
+1/3
青岛科技大学高分子学院--让我们一起做有趣的研究
+1/1
18楼2021-12-24 08:42:29
9楼2021-12-21 20:49:10
简单回复
tzynew2楼
2021-12-21 18:27
回复
Langhorne(金币+1): 谢谢参与
o 发自小木虫Android客户端
b39580125楼
2021-12-21 19:02
回复
bjdxyxy3楼
2021-12-21 18:27
回复
Langhorne(金币+1): 谢谢参与
。 发自小木虫Android客户端
6号枫木塔13楼
2021-12-22 10:22
回复
春意-盎然6楼
2021-12-21 19:15
回复
Langhorne(金币+1): 谢谢参与
~ 发自小木虫Android客户端













回复此楼
