Ink jetting Drop-on-demand ink jet.

Slides:



Advertisements
Similar presentations
Solids, Liquids, and Gases (and Plasmas) Chapter 3
Advertisements

Anodic Aluminum Oxide.
Fuel Injection System Dr Jehad Yamin.
Dynamic model of a drop shot from an inkjet printer.
Presented By: Jennifer Erle Amberlee French Sarah Bennett Josh Hamilton John Schmitt.
Science 8: Unit A: Mix and Flow of Matter Topic 4: Flow Rate and Viscosity.
Simulation and Analysis of Equally Distributed Flow for Use in Ultrasonic Atomization Lindsay Rogers University of Wisconsin, Platteville Mechanical Engineering.
Ink Jetted Metallization Mikko Ruskola Marianne Joutti Anas Al-Azawi Jukka Heikkurinen Sasha Hoshian.
Che5700 陶瓷粉末處理 造粒 Granulation To produce free flowing particles for further processing; often after powder synthesis and before forming of products, may.
FUEL INJECTION SYSTEMS WITH A FOCUS ON FUEL ATOMIZATION By: David Shamrell.
Matter: Properties & Change
Describing Matter & States of Matter
 Spotty Pest Control  Wasted chemicals  Off-target damage  Higher costs - $$$  Environmental impact  Water and Air Quality  Public more aware of.
Motion of particles trough fluids part 2
Bioprinter for the Micropatterning of Macromolecules Group 3 Sailaja Akella Caroline LaManna Teresa Mak Rupinder Singh Advisors Emilia Entcheva, Ph.D Helmut.
Purpose Utilize Ag nanoparticles to develop a method to print
Chapter 01: Flows in micro-fluidic systems Xiangyu Hu Technical University of Munich.
Nesibe Lakhani EECS 277A Prof. Richard Nelson
Petroleum & Natural Gas Eng. Dept.
NanoParticles On Demand “NPOD” Todd Miller Microproducts Breakthrough Institute.
Environmentally Conscious Design & Manufacturing (ME592) Date: March 20, 2000 Slide:1 Environmentally Conscious Design & Manufacturing Class 7: Cutting.
Principles of Liquid Flow through Pipelines
Synthesis of Metal Oxide Nanoparticles by Flame Method Synthesis of Metal Oxide Nanoparticles by Flame Method.
The Physics of Balloons and Submarines…cont’d…. The Ideal Gas Law Equation We learned that Pressure of an Ideal Gas is proportional to Particle Density.
Ink-Jet Metalization Dalla Costa Giovanni, Honkala Salomon, Kalliala Olli, Multaharju Miikka.
Inkjet Printing Inkjet Technology Fundamentals Rafi Bronstein Rafi
L 15 Fluids [4] Fluid flow and Bernoulli’s principle Airplanes and curveballs viscosity surface tension.
Technologies for Realizing Carbon Nano-Tube (CNT) Vias Clarissa Cyrilla Prawoto 26 November 2014.
Properties of Fluids SPH4C. Fluids Liquids and gases are both fluids: a fluid is any substance that flows and takes the shape of its container.
Electrospinning Technique University of Technology
Surface micromachining
Notes G. States of Matter
Bidirectional field-flow particle separation method in a dielectrophoretic chip with 3D electrodes Date : 2012/12/24 Name : Po Yuna Cheng( 鄭博元 ) Teacher.
Che5700 陶瓷粉末處理 造粒Granulation
Kurt Christenson and Michael Renn - Optomec, Inc.
Physical Properties of Matter Objective: Students will be able to recognize and name physical properties of matter.
 Spray drying - formation of droplets from the bulk liquid – moisture removal  liquid droplets - sprayed –drying chamber  the low-humidity hot gas.
Copyright Prentice-Hall Chapter 29 Fabrication of Microelectromechanical Devices and Systems (MEMS)
Center for Materials for Information Technology an NSF Materials Science and Engineering Center Nanolithography Lecture 15 G.J. Mankey
EE235 Presentation I CNT Force Sensor Ting-Ta YEN Feb Y. Takei, K. Matsumoto, I. Shimoyama “Force Sensor Using Carbon Nanotubes Directly Synthesized.
Unit 5 Section 2 Notes Matter and Energy Kinetic Theory of Matter:  Useful for seeing differences in the 3 common states of matter on earth: solid,
Are mechanical laws different at small scales? YES! If we scale quantities by a factor ‘S’ Area  S 2 Volume  S 3 Surface tension  SElectrostatic forces.
Microfluidics Design & Chip Application Reporter: AGNES Purwidyantri Student ID no: D Biomedical Engineering Dept.
Four States of Matter Chapter 2 Section 1 Pages 30 – 37.
States of matter and their properties. States of Matter.
1-D Nanorods Remember: –Tomorrow (4/30): Lab #2 report is due –Monday (5/4): Paper w/ group members name, , project topic is due –Wed (5/6): Alissa.
2D Jet Simulation Updates Jan.23 rd 2014 Yan Zhan SUNY Stony Brook 1.
Properties of Liquids Kinetic-Molecular theory …The phase of any substance is determined by the inter and intramolecular forces present and the KE of the.
States of Matter States of matter= the physical forms in which a substance can exist EXAMPLE: water exists in solid (s), Liquid (l), and gas (g) forms.
Microfluidics: introduction
Anything that has mass and volume. Physical Property  A characteristic of a substance that does not involve a chemical change  Examples: Density Color.
Are mechanical laws different at small scales? YES! If we scale quantities by a factor ‘S’ Area  S 2 Volume  S 3 Surface tension  SElectrostatic forces.
States of Matter.  Solids have definite shape and definite volume  Particles in a solid are packed very closely together and are in a fixed position.
Liquid Flame Spray Deposition on Temperature Sensitive Substrates Antti Toropainen
Introduction to Spin Coating and Derivation of a Simple Model
(Chapters 29 & 30; good to refresh 20 & 21, too)
Matter Chapter Five 5.2 Solid Matter 5.2 Mechanical properties “Strength” describes the ability of a solid object to maintain its shape even when force.
Indian Institute of Space Science and Technology STUDY OF EFFECT OF GAS INJECTION OVER A TORPEDO ON FLOW-FIELD USING CFD.
Nathalya Ramirez1, Zach McNulty2, Michael Orrill3, Saniya Leblanc3
States of Matter (Ch. 5) Notes
Atom.
Microreactors: materials, fabrication, catalysis
Classification of Matter
Modelling of Frost Formation and Growth on Microstuctured Surface
Lecture – 1 Ms. Thevasha Sathiyakumar
Properties of Liquids, Suspensions and Colloidal Dispersions
11.2 NOTES Liquids.
with Solids, Liquids, & Gases
Solids, Liquids, Gases, and Plasmas
Fig. 5 High-speed printing and process performance metrics.
Presentation transcript:

Ink jetting

Drop-on-demand ink jet

Ink jet firing sequence

Continuos ink jet (CIJ) Derby: Annu Rev. Mater.Res 2010

Numbers nozzles µm in diameter droplet volumes pl pixel size on paper 50 µm shooting frequency up to 10 kHz

Ink jet imaged P.Koltay (IMTEK, Freiburg) in Oosterbroek: Lab-on-a-Chip

Reynolds number (Re) ratio of inertial to viscous forces Re = ρνD/η ρ = density of fluid (kg/m3) ν = linear velocity (m/s) D = dimension of the system, diameter (m) η = viscosity of the fluid (Pa*s = kg/m*s) viscosity is the quantity that describes a fluid's resistance to flow small Re means large viscous forces

Weber number Transducers 2007 p.165

Ohnesorge number Transducers 2007 p.165

Ink jet regimes

Fluidics (3) Transducers 2007 p.165

Ink properties (1) ink viscosity: 8-15 mPa*s, 20 mPa*s limit (water 1 mPa*s) surface tension: mN/m, even 350 (water 72 mN/m) higher temperature, viscosity down (  able to print high M w polymers) particles difficult: clogging

Ink properties (2) Water-Based Ink Jet Ink Ingredients AmountFunction Water50%-90%Ink Solvent Colourant1%-15%Colour Source Co-Solvent/Humectant2%-20%Ink vehicle, prevents evaporation Fixative/Penetrant0%-10%Assist fixing the ink to substrate Surfactant0.1%-6%Surface tension and wetting Resin0.2%-10%Durability and adhesion Biocide0.02%-0.4%Prevents bacterial growth Fungicide0.01%-0.4%Prevents fungal growth Buffering Agent0.05%-1%Control ink pH level Other0.01%-1%Controls specific characteristics

Thermal ink jet in silicon

Thermal ink jet MEMS Handbook

Top shooters

Sideshooter

Arrays of nozzles Gad-el-Hak: MEMS Handbook

Graphic printing vs. Functional materials printing Functional materials perform something, Conduct electricity Respond to enzymes Show iridicence Bend mechanically Host cells

Line definition: droplet spacing & overlap Silver nanoparticle printing of conductor lines. a)Droplets too sparsely b)Wavyness still seen c)Optimal d)Too much liquid leads to bulging

Drop spreading & temperature Substrate temperature is a standard variable in ink jetting experiments. It directly affects surface tension and viscosity and therefore spreading on substrate.

Film formation

Surface coverage

Nanoparticle inks Murata

Metal salt inks

Ink jet etching I.M. Hutchings: Ink-jet printing in micro- mabufacturing, 4M/ICOMM 2009

3D ink jetting I.M. Hutchings: Ink-jet printing in micro- mabufacturing, 4M/ICOMM 2009

Competition: Laser-assisted maskless microdeposition Alemohammad: J. Micromech. Microeng. 18 (2008) (12pp)

Laser-assisted maskless microdeposition (2) Alemohammad: J. Micromech. Microeng. 18 (2008) (12pp)

The MDDW method makes patterns on the substrate by pumping the slurry of suspended nanometal powders. Since it does not rely on the spray mechanism but direct contacting mechanism, it allows to avoid or minimize the ink from oxidation or reduction during the printing process. MDDW: microdispensing deposition write

M3D: maskless mesoscale materials deposition M3D method uses a mechanically or ultrasonically driven device to stir and mix the suspended nanometal powders injecting the slurry through an orifice as a mist with the help of an air injection mechanism. M3D and MDDW devices have been developed beyond the capability that the ink-jet method can perform in handling high viscous materials and they can even handle three-dimensional patterns.

Ink jet dichotomies thermal vs. piezo continuous vs. drop-on-demand (DoD) free pressure vs. free flow boundary conditions printing on porous vs. hard surfaces (paper vs. overhead transparency) printing vs. film formation 2D patterns vs. 3D structures solutions vs. particle-containing inks

Ultimate resolution ?

Creating cell patterns Ink jet printing of PLGA polymer on PS substrate. Cells attach to PLGA but not on PS.

Ink jetting bacteria

Printing DNA arrays

Promise: fewer process steps  faster, cheaper electronics Murata et al: Microsyst Technol (2005) 12: 2–7

Applications: antennas (c) Inductive coil printed on fabric. (d) RFID antenna with metallic joints printed on paper. J. Micromech. Microeng. 17 (2007) 967–974 S M Bidoki, D M Lewis, M Clark, A Vakorov, P A Millner and D McGorman:

Applications: 3D N. S. Kim, A. K. Amert, S. M. Woessner, S. Decker, S. M. Kang, and K. N. Han International Conference on Nano Science and Nano Technology, GJ-NST 2006, Korea Institute Industrial Technology,Gwangju, South Korea, 7–8 December Antenna print on a combat helmet surface by the MDDW technique. Ko & Grigoropoulos: JMM

Printing metallization I.M. Hutchings: Ink-jet printing in micro- mabufacturing, 4M/ICOMM 2009

Printing insulators I.M. Hutchings: Ink-jet printing in micro- mabufacturing, 4M/ICOMM 2009

Printing polymers I.M. Hutchings: Ink-jet printing in micro- mabufacturing, 4M/ICOMM 2009

Printing further I.M. Hutchings: Ink-jet printing in micro-mabufacturing, 4M/ICOMM 2009