pnp-switchable Materials as Diodes and Transistors (pnp-mat)
pnp-switchable Materials as Diodes and Transistors (pnp-mat)
批准号:
522732992
负责人:
Professor Dr. Alexander Walter Holleitner
金额:
$0.0万
依托单位国家:
德国
项目类别:
Research Grants
财政年份:
--
资助国家:
德国
项目状态:
未结题
起止时间:
中文摘要
本项目将首次实现和制造单组分二极管和单组分晶体管,并计划随后将其用于光、气和水的分离应用。我们打算合成和使用可切换pnp的半导体,如Ag18Cu3Te11Cl3和agcu,它们在这一点上表现出可逆的结构相变和独特的pnp开关半导体机制。该项目的目标是利用这一效应来创造第一个和以前看不见的单组分二极管和单组分晶体管,它们不是由两个独立的p型和n型掺杂半导体组成,而是由单一材料中的简单热激活产生的。利用体积和纳米材料的U/I测量,我们打算确定二极管和晶体管的物理性质、pn转变动力学和电学参数。除了已知的相外,我们将寻求新的pnp可切换材料,并打算通过取代阳离子和阴离子来优化上述材料。选定的化合物将测试其在气体和光传感应用以及水分解方面的潜力。因此,我们将测量气体或光应用时的U/I特性,或者在开关时测试这些材料作为水裂解催化剂。特别是Ag18Cu3Te11Cl3,其室温下的pnp开关具有非凡的潜力,可用于各种应用。最近,我们证实并发表了Ag18Cu3Te11Cl3的二极管行为。该项目计划在化学材料合成、纳米化学和晶体物理两个小组的密切合作下进行。项目结束后,单组分二极管和晶体管可能成为IT技术、传感器或多种催化应用领域的新参与者。
英文摘要
This projects deals with the first realization and fabrication of one-component diodes and one-component transistors which are planned to be utilized in light, gas and water splitting applications afterwards. We intend to synthesise and use pnp-switchable semiconductors like Ag18Cu3Te11Cl3 und AgCuS which show a reversible structural phase transition and an unique pnp switch of their semiconductor mechanism at this point. Goal of this project is to utilize this effect to create the first and former unseen one-component diode and one-component transistor which do not consist of two independent p- and n-type doped semiconductors, but which are generated by a simple thermal activation in a single material instead. Using U/I measurements on bulk and nano-materials we intend to determine the physical properties, the pn-transition kinetics and the electrical parameters of the diodes and transistors. Beside the known phases we will seek for new pnp-switchable materials and we intend to optimize the afore mentioned ones by substitution of cations and anions. Selected compounds will be tested for their potential in gas and light sensing applications and for water splitting. Here fore, we will measure the U/I characteristics upon application of gas or light or we test these materials as water splitting catalyst upon switching. Especially Ag18Cu3Te11Cl3 has an extraordinary potential with its pnp-switch at room temperature to be used in various applications. Recently, we were able to substantiate and publish the diode behaviour of Ag18Cu3Te11Cl3. The project is planned in close collaboration between two groups with competences in chemical material synthesis, nano chemistry, and crystal physics. After the termination of the project one-component diodes and transistors may be new players in IT technology, as sensors, or in manifold catalytic applications.
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会议论文
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批准号:237548240
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项目类别:Priority Programmes
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资助金额:$0.0万
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财政年份:2013
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负责人:Professor Dr. Alexander Walter Holleitner
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依托单位:
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资助金额:$0.0万
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负责人:Professor Dr. Alexander Walter Holleitner
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依托单位:
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批准号:25125718
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项目类别:Priority Programmes
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资助金额:$0.0万
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财政年份:2006
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负责人:Professor Dr. Alexander Walter Holleitner
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依托单位:
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批准号:290642686
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项目类别:Research Grants
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资助金额:$0.0万
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财政年份:--
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负责人:Professor Dr. Alexander Walter Holleitner
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依托单位:
海外基金