Tribocharge · Control of Triboelectricity from Micro to Macro as a Principle of Sticking, Particulate Contamination and ESD Prevention of Micromachines
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2016-03-01 → 2018-02-28
- EU contribution
- €157,846
- Participants
- 1
- Scheme
- MSCA-IF-EF-RI
Lines connect the coordinator with its partners.
Results in brief
Control of Triboelectricity from Micro to Macro as a Principle ofSticking, Particulate Contamination and ESD Prevention of Micromachines
Summary: Contact electrifcation (CE)—charging of surfaces that are contacted and separated, is a common phenomenon, however it is not completely understood yet. Tribocharging is a very common event causing value losses due to electrostatic sticking and electrostatic discharging (ESD) problems in many industrial manufacturing processes such as static cling of powder materials in drug processing, ESD problems in electronics. In this study, I focused on the elimination of static charge that accumulates on polymers that are used to produce MEMS.. Although friction and tribocharging were presented to be mutually related, to what extent tribocharging affects friction-related macroscopic-scale losses was not shown to date. Here I show, for common polymers which are used to manufacture MEMS, friction - which indeed is strongly related with surface charge density- can be significantly reduced by various methods of tribocharge mitigation, namely, corona discharging, solvent treatment, or placing a grounded conductor on the backside of one of the shearing materials. One fourth of the global energy losses result from friction and wear. I show, a remarkable two thirds of energy lost during operation of simple mechanical devices can be saved and wear can be reduced by a factor of ten at macro scale as a first step using polymeric materials. Our simple demonstrations indicate important practical ramifications in mechanical systems with insulating materials that are used in MEMS. What is the problem/issue being addressed? The fundamental problem being addressed is a millennia-old problem of how (static) electricity is generated on some surfaces. Known broadly as contact electrification, triboelectrification or frictional electricity, this phenomenon yields many adverse effects in industry, e.g. polymer, electronics, space industries and drug manufacturing. With the recent advancements are promote MEMS devices to replace the conventional ones, the tribocharging during operation of these devices, which hinder and sometimes prevent their operation, is becoming vitally important. For this reason, we start by understanding the fundamentals of the triboelectrification by using the common polymer material used in MEMS and showing the mechanism of charge formation in tribocharging in this study. Why is it important for society? Triboelectrification or frictional electricity is a phenomenon that causes billions of dollars of losses in industry, e.g. polymer, electronics, space industries and drug manufacturing. These losses can be the energy lost in stiction, or total malfunction because of electrostatic discharges. The smaller the devices are, the more important is the effect of tribocharging; stiction and electrostatic discharges. Understanding the mechanism of electrification can prevent these losses and can boost the device operation lifetimes. With this paper, for the first time we have shown that, on contrary to the common belief, triboelectrification of two surfaces that are contacted and separated does not occur only upon contact or separation but happens in both. Also, we could resolve the charge formation events in contact and separation very neatly and saw that upon contact of the surfaces there are two polarities of charge – again undermining the conventional thinking that charge transfers from one surfaces to the other unidirectionally. These findings help us to design better antistatic materials to prevent the negative effects of tribocharging. What are the overall objectives? To eliminate the stiction and ESD problems in MEMS (and other) devices, one has to discover a general approach, based on the mechanism of charge formation. The overall objective of this publication is to uncover the mechanism of tribocharge formation on contacted polymer surfaces, resolving the charging event in time to understand the charge formation and transfer during contact and separation events. We use common polymers that are used in MEMS devices, contacting them with metals and other polymers to probe the tribocharging events.
Data: CORDIS, © European Union
Project objective
Microelectromechanical systems (MEMS) is the technology of micromachines up to 100 micrometers in size. In the era of minituarization, MEMS represents a huge and rapidly growing market, which will exceed $20B by 2020 and Europa constitutes about 20% of the total world market. However, the technology struggles with some problems preventing its fast development. This proposal aims to deal with those related to tribocharging (frictional electricity), which has been overlooked so far. Tribocharging is a very common event causing value losses due to electrostatic sticking and electrostatic discharging (ESD) problems in many industrial manufacturing processes such as static cling of powder materials in drug processing, ESD problems in electronics. Attempts to eliminate static electricity from solid and liquid materials includes the addition of antistatic agents to them that increases the deposition of water from ambient moisture and the addition or doping of some conducting materials e.g. carbon powder into plastics and a conductive path removes the excess electrostatic charge. However, these solutions are not generally very practical and limited by the specific applications in micro dimensions. In this proposal, we focused on the elimination of static charge that accumulates on MEMS. To eliminate static electricity from MEMS, I will use the chemical approach that we introduced (Science, 2013). Firstly, we aim to eliminate the excess static charge from polymer based (MEMS) using this approach by incorporating antistatic and anti-sticking properties to these micro devices for the first time. Secondly, ESD will be eliminated in these micro devices using the same approach based on the scavenging of excess electrostatic charges. Finally, it will be possible to extend the lifetime of these micro devices by eliminating problems such as sticking, (charged) particulate contamination due to e.g. wear, and ESD that mainly arise from tribocharging.
Original text from CORDIS.
Participants
- BILKENT UNIVERSITESI VAKIF · Bilkent AnkaraCoordinatorTürkiye
Links
Data: CORDIS, © European Union
