微流体技术方向博士职位
PhD position Using microfluidics to observe and manipulate coacervate droplets
原帖优先:申请材料、截止时间与资格以原帖和学校官方说明为准。
AI 中文速览
- 研究内容
- 使用微流体技术观察和操纵凝集液滴
- 申请条件
- 原文未说明
- 待遇
- 薪资 EUR 3204 - 4051 每月
- 申请方式
- 原文未说明
- 材料清单
- 原文未说明
由 @cf/meta/llama-3.3-70b-instruct-fp8-fast 生成,博士岗判定置信度 100%。
结构化信息
- 截止
- (Europe/Amsterdam) 剩 4 天
- 学科
- 材料科学
- 合同类型
- 雇佣合同
- 原文薪资
- EUR 3,204–4,051 / 月(税前)
- 税后月薪(估)
- ¥19,000–¥24,000;房租后 ¥11,100–¥16,100
- 估算假设
- 单身、无子女、雇佣合同的粗略估算,以学校 offer 为准;扣除率 25%;汇率日期 2026-10-01
- 原帖发布
- 本站收录
- 内容更新
- 来源
- AcademicTransfer(荷兰学术招聘) · 最近核对 2026-10-07
判定依据(原文摘录)
- is_phd
PhD candidate
原文
We are looking for a 4-year PhD candidate to join our nationally funded, multi-partner research consortium, Towards De-Novo Life. The main aim of this interdisciplinary project is to achieve minimal life based on chemical rather than biological components such as DNA, proteins or other macromolecules. Our PhD candidate will contribute by developing new microfluidic tools to work with micrometer-sized coacervate droplets, the compartments in which chemical replication, growth and evolution will take place.
What are you going to do?
The de-novo synthesis of life requires integrating the essential features of life, which include replication (the ability to copy oneself), metabolism (promoting the formation of one’s own components from material in the environment) and compartmentalization (keeping the internal components together and separate from the environment) into a system that is maintained out of equilibrium. Key to the creation of a minimal form of life is Darwinian evolution of the resulting synthetic cell-like systems. Serving as the compartments in our work are coacervate microdroplets, consisting of a very dense aqueous phase containing a high concentration of macromolecules. Because coacervates can exist in dilute aqueous phases without loss of droplet structure, they can act as cell-like spheres without the need of a membrane to contain their content.
In this project, you will use microfluidics to create a first-generation platform to achieve growth and division of micrometer-sized coacervate droplets. You will then consider populations of coacervate droplets confined in a second, more complex microfluidic platform, monitoring their growth and mutation rates. “Mother” droplets will be followed alongside their “daughters” using fluorescence microscopy, with addition of precursor materials (“nutrients”) and random removal of individuals (“death”).