Difference between revisions of "EPD Paper, April 2007"

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::Addressing. With a display thickness of 50micrometer and an average dielectric constant of 5.0, the capacitance per element would be ~0.055 pF.
 
::Addressing. With a display thickness of 50micrometer and an average dielectric constant of 5.0, the capacitance per element would be ~0.055 pF.
 
*(1.15) S. Vermael, K. Neyts, G. Stojmenovik, F. Beunis, L. Schlangen, [http://escher.elis.rug.ac.be/publ/Edocs/DOC/P103_126.pdf "A 1-Dimensional Simulation Tool for Electophoretic Displays"], Fourth FTW PhD Symposium, Ghent University, 2003
 
*(1.15) S. Vermael, K. Neyts, G. Stojmenovik, F. Beunis, L. Schlangen, [http://escher.elis.rug.ac.be/publ/Edocs/DOC/P103_126.pdf "A 1-Dimensional Simulation Tool for Electophoretic Displays"], Fourth FTW PhD Symposium, Ghent University, 2003
*(1.17) E. Herz, [http://people.ccmr.cornell.edu/~cober/mse542/page2/files/Herz%20Electrophoretics.pdf "Electrophoretic Display technology: The beginnings, the improvements, and a future in flexible electronics"], Term Paper, MSE542, Cornell University, May 19, 2006]
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*(1.17) E. Herz, [http://people.ccmr.cornell.edu/~cober/mse542/page2/files/Herz%20Electrophoretics.pdf "Electrophoretic Display technology: The beginnings, the improvements, and a future in flexible electronics"], Term Paper, MSE542, Cornell University, May 19, 2006
 
*(1.19) H. Takao, M. Miyasaka, H. Kawai, H. Hara, A. Miyazaki, T. Kodaira, S. W. B. Tam, S. Inoue, T. Shimoda, [http://ieeexplore.ieee.org.ezproxy1.lib.asu.edu/iel5/9370/29754/01356551.pdf?tp=&arnumber=1356551&isnumber=29754 "Flexible Semiconductor Devices: Fingerprint Sensor and Electrophoretic Display on Plastic"], ESSDERC Proceeding of the 34th European, pp. 309-312, September 2004
 
*(1.19) H. Takao, M. Miyasaka, H. Kawai, H. Hara, A. Miyazaki, T. Kodaira, S. W. B. Tam, S. Inoue, T. Shimoda, [http://ieeexplore.ieee.org.ezproxy1.lib.asu.edu/iel5/9370/29754/01356551.pdf?tp=&arnumber=1356551&isnumber=29754 "Flexible Semiconductor Devices: Fingerprint Sensor and Electrophoretic Display on Plastic"], ESSDERC Proceeding of the 34th European, pp. 309-312, September 2004
 
::EPD driver information and pixel level model
 
::EPD driver information and pixel level model
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*(1.22) K. S. Kim, J. Y. Lee, B. J. Park, J. H. Sung, I. Chin, H. J. Choi, J. H. Lee, [http://www.springerlink.com.ezproxy1.lib.asu.edu/content/60m7141x33768100/fulltext.pdf "Synthesis and characteristics of microcapsules containing electrophoretic particle suspensions"], Springer-Verlag, 11 January 2006
 
*(1.22) K. S. Kim, J. Y. Lee, B. J. Park, J. H. Sung, I. Chin, H. J. Choi, J. H. Lee, [http://www.springerlink.com.ezproxy1.lib.asu.edu/content/60m7141x33768100/fulltext.pdf "Synthesis and characteristics of microcapsules containing electrophoretic particle suspensions"], Springer-Verlag, 11 January 2006
 
*Tokiwa, Imamura, [http://www.springerlink.com.ezproxy1.lib.asu.edu/content/t7n52018550617k8/fulltext.pdf "Electrophoretic Mobility Studies of Colloidal Particles in Aqueous Solutions of Various Phosphates"], Journal of the American Oil Chemists' Society, June 1969
 
*Tokiwa, Imamura, [http://www.springerlink.com.ezproxy1.lib.asu.edu/content/t7n52018550617k8/fulltext.pdf "Electrophoretic Mobility Studies of Colloidal Particles in Aqueous Solutions of Various Phosphates"], Journal of the American Oil Chemists' Society, June 1969
*(1.23) T. Bert, H. De Smet, F. Beunis, K. Neyts, [http://escher.elis.ugent.be/publ/Edocs/DOC/P106_015.pdf "Complete electrical and optical simulation of electronic paper"], Science Direct, 13 October 2005]
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*(1.23) T. Bert, H. De Smet, F. Beunis, K. Neyts, [http://escher.elis.ugent.be/publ/Edocs/DOC/P106_015.pdf "Complete electrical and optical simulation of electronic paper"], Science Direct, 13 October 2005
 
*(1.24) F. Strubbe, (K. Neyts), [http://escher.elis.ugent.be/publ/Edocs/DOC/P105_173.pdf "Determination of the valency of pigment particles in electrophoretic ink"], Ghent University, 30 November 2005
 
*(1.24) F. Strubbe, (K. Neyts), [http://escher.elis.ugent.be/publ/Edocs/DOC/P105_173.pdf "Determination of the valency of pigment particles in electrophoretic ink"], Ghent University, 30 November 2005
 
*M. Valentine, [http://powerelectronics.com/mag/power_driver_electronics_morph/ "Driver Electronics Morph for Flexible Displays"], Power Electronics Technology, July 1, 2006
 
*M. Valentine, [http://powerelectronics.com/mag/power_driver_electronics_morph/ "Driver Electronics Morph for Flexible Displays"], Power Electronics Technology, July 1, 2006
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=== Electro-wetting displays ===
 
=== Electro-wetting displays ===
*Hayes and Feenstra, [http://www.nature.com/nature/journal/v425/n6956/full/nature01988.html;jsessionid=0CE032D8CA3F256C77384106AF8B5FEF "Video-speed electronic paper based on electrowetting"], ''Nature'' 425, 383-385, 25 September 2003]
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*Hayes and Feenstra, [http://www.nature.com/nature/journal/v425/n6956/full/nature01988.html;jsessionid=0CE032D8CA3F256C77384106AF8B5FEF "Video-speed electronic paper based on electrowetting"], ''Nature'' 425, 383-385, 25 September 2003
  
 
=== Organic Light Emitting Diode (OLED) ===
 
=== Organic Light Emitting Diode (OLED) ===
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:*[10] [http://www.beyondinfinite.com/lcd/Library/LG-Philips/LP064V1.pdf LG Phillips, LP064V1 LCD specifications (640x480px, 0.9W-1.54W)]
 
:*[10] [http://www.beyondinfinite.com/lcd/Library/LG-Philips/LP064V1.pdf LG Phillips, LP064V1 LCD specifications (640x480px, 0.9W-1.54W)]
 
:*[13](1.2) (13) H. Aoki, [http://ieeexplore.ieee.org.ezproxy1.lib.asu.edu/iel1/16/10174/00477590.pdf?tp=&arnumber=477590&isnumber=10174 "Dynamic Characterization of a-Si TFT-LCD Pixels"]
 
:*[13](1.2) (13) H. Aoki, [http://ieeexplore.ieee.org.ezproxy1.lib.asu.edu/iel1/16/10174/00477590.pdf?tp=&arnumber=477590&isnumber=10174 "Dynamic Characterization of a-Si TFT-LCD Pixels"]
:*(apparently related) Simrata, Subhasis, Gupta, Gate [http://www.sciencedirect.com.ezproxy1.lib.asu.edu/science?_ob=MImg&_imagekey=B6TY5-4BRKV2Y-6-48&_cdi=5609&_user=56861&_orig=search&_coverDate=05%2F31%2F2004&_sk=999519994&view=c&wchp=dGLzVzz-zSkWA&md5=39e03ee80100e3c4f593206d4f54505b&ie=/sdarticle.pdf "Capacitance Characteristics of a Poly-Si Thin Film Transistor"
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:*(apparently related) Simrata, Subhasis, Gupta, Gate [http://www.sciencedirect.com.ezproxy1.lib.asu.edu/science?_ob=MImg&_imagekey=B6TY5-4BRKV2Y-6-48&_cdi=5609&_user=56861&_orig=search&_coverDate=05%2F31%2F2004&_sk=999519994&view=c&wchp=dGLzVzz-zSkWA&md5=39e03ee80100e3c4f593206d4f54505b&ie=/sdarticle.pdf "Capacitance Characteristics of a Poly-Si Thin Film Transistor"]
 
*(1.6) A. Iranli, W. Lee, M. Pedram, [http://delivery.acm.org.ezproxy1.lib.asu.edu/10.1145/1150000/1147064/p604-iranli.pdf?key1=1147064&key2=4296552711&coll=portal&dl=ACM&CFID=10949569&CFTOKEN=52685087 "Backlight Dimming in Power-Aware Mobile Displays"], DAC, 2006
 
*(1.6) A. Iranli, W. Lee, M. Pedram, [http://delivery.acm.org.ezproxy1.lib.asu.edu/10.1145/1150000/1147064/p604-iranli.pdf?key1=1147064&key2=4296552711&coll=portal&dl=ACM&CFID=10949569&CFTOKEN=52685087 "Backlight Dimming in Power-Aware Mobile Displays"], DAC, 2006
 
*(1.4) W. Cheng, C. Chao, [http://ieeexplore.ieee.org.ezproxy1.lib.asu.edu/iel5/11109/35624/01688869.pdf?tp=&arnumber=1688869&isnumber=35624 "Minimization for LED-backlit TFT-LCDs"], DAC, 2006
 
*(1.4) W. Cheng, C. Chao, [http://ieeexplore.ieee.org.ezproxy1.lib.asu.edu/iel5/11109/35624/01688869.pdf?tp=&arnumber=1688869&isnumber=35624 "Minimization for LED-backlit TFT-LCDs"], DAC, 2006
 
::Addresses independant scaling of three color LED backlights based on image histogram
 
::Addresses independant scaling of three color LED backlights based on image histogram
 
*(1.8) A. Iranli, M. Pedram, [http://delivery.acm.org.ezproxy1.lib.asu.edu/10.1145/1070000/1065741/p612-iranli.pdf?key1=1065741&key2=9956552711&coll=portal&dl=ACM&CFID=10949569&CFTOKEN=52685087 "DTM: Dynamic Tone Mapping for Backlight Scaling"], DAC, June 2005
 
*(1.8) A. Iranli, M. Pedram, [http://delivery.acm.org.ezproxy1.lib.asu.edu/10.1145/1070000/1065741/p612-iranli.pdf?key1=1065741&key2=9956552711&coll=portal&dl=ACM&CFID=10949569&CFTOKEN=52685087 "DTM: Dynamic Tone Mapping for Backlight Scaling"], DAC, June 2005
*(1.5) F. Gatti, A. Acquaviva, L. Benini, B. Ricco’, [http://delivery.acm.org.ezproxy1.lib.asu.edu/10.1145/590000/581664/p218-gatti.pdf?key1=581664&key2=6805642711&coll=portal&dl=ACM&CFID=10949569&CFTOKEN=52685087 "Low Power Control Techniques For TFT LCD Displays", CASES, October 2002
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*(1.5) F. Gatti, A. Acquaviva, L. Benini, B. Ricco’, [http://delivery.acm.org.ezproxy1.lib.asu.edu/10.1145/590000/581664/p218-gatti.pdf?key1=581664&key2=6805642711&coll=portal&dl=ACM&CFID=10949569&CFTOKEN=52685087 "Low Power Control Techniques For TFT LCD Displays"], CASES, October 2002
 
*(1.3) L. Benini, R. Hodgson, P. Siegel, [http://delivery.acm.org.ezproxy1.lib.asu.edu/10.1145/290000/280881/p173-benini.pdf?key1=280881&key2=5196552711&coll=portal&dl=ACM&CFID=10949569&CFTOKEN=52685087 "System-level Power Estimation And Optimization"], ISLPED, August 1998
 
*(1.3) L. Benini, R. Hodgson, P. Siegel, [http://delivery.acm.org.ezproxy1.lib.asu.edu/10.1145/290000/280881/p173-benini.pdf?key1=280881&key2=5196552711&coll=portal&dl=ACM&CFID=10949569&CFTOKEN=52685087 "System-level Power Estimation And Optimization"], ISLPED, August 1998
 
*(1.7) L. Zhong, N. K. Jha, [http://delivery.acm.org.ezproxy1.lib.asu.edu/10.1145/960000/951742/p232-zhong.pdf?key1=951742&key2=9737552711&coll=portal&dl=ACM&CFID=10949569&CFTOKEN=52685087 "Graphical User Interface Energy Characterization for Handheld Computers"], CASES, October 2003
 
*(1.7) L. Zhong, N. K. Jha, [http://delivery.acm.org.ezproxy1.lib.asu.edu/10.1145/960000/951742/p232-zhong.pdf?key1=951742&key2=9737552711&coll=portal&dl=ACM&CFID=10949569&CFTOKEN=52685087 "Graphical User Interface Energy Characterization for Handheld Computers"], CASES, October 2003
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::3.1: The display itself consists of several parts: LCD power circuitry, a front light, and an LCD.  The LCDs used in the systems we studied are color active thin film transistor (TFT) LCDs.  In such LCDs, each pixel has three comonents: R, G and B, signifying red, green and blue, respectively. Liquid crystals for each component are independently oriented by two polarizers, which are connected to a storage capacitor.  The capacitor is in turn charged and discharged through a TFT to accommodate screen changes.  Moreover, the capacitor must be refreshed at a high rate to maintain an appropriate voltage across the polarizers so that the corresponding liquid crystals remain properly oriented.
 
::3.1: The display itself consists of several parts: LCD power circuitry, a front light, and an LCD.  The LCDs used in the systems we studied are color active thin film transistor (TFT) LCDs.  In such LCDs, each pixel has three comonents: R, G and B, signifying red, green and blue, respectively. Liquid crystals for each component are independently oriented by two polarizers, which are connected to a storage capacitor.  The capacitor is in turn charged and discharged through a TFT to accommodate screen changes.  Moreover, the capacitor must be refreshed at a high rate to maintain an appropriate voltage across the polarizers so that the corresponding liquid crystals remain properly oriented.
 
*(1.9) A. Kudurshian, [http://www.kudurshian.net/projects/kudurshian1.pdf "Techniques in Decreasing Power Consumption for Handheld Displays"], CS IS: Issues in Embedded Systems, 2002
 
*(1.9) A. Kudurshian, [http://www.kudurshian.net/projects/kudurshian1.pdf "Techniques in Decreasing Power Consumption for Handheld Displays"], CS IS: Issues in Embedded Systems, 2002
*(1.10) I. Choi, H. Shim, N. Chang, [http://delivery.acm.org/10.1145/570000/566440/p112-choi.pdf?key1=566440&key2=9119872711&coll=GUIDE&dl=GUIDE&CFID=15758537&CFTOKEN=10586811 "Low-Power Color TFT LCD Display for Hand-Held Embedded Systems", International Symposium on Low Power Electronics and Design, August 12-14, 2002
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*(1.10) I. Choi, H. Shim, N. Chang, [http://delivery.acm.org/10.1145/570000/566440/p112-choi.pdf?key1=566440&key2=9119872711&coll=GUIDE&dl=GUIDE&CFID=15758537&CFTOKEN=10586811 "Low-Power Color TFT LCD Display for Hand-Held Embedded Systems"], International Symposium on Low Power Electronics and Design, August 12-14, 2002
 
*(1.11) B. W. Marks, [http://ieeexplore.ieee.org.ezproxy1.lib.asu.edu/iel5/16/31855/01482355.pdf?tp=&arnumber=1482355&isnumber=31855 "Power Consumption in Multiplexed Liquid-Crystal Displays"], IEEE Transactions on Electron Devices, Vol. ED-29, No. 8, August 1982
 
*(1.11) B. W. Marks, [http://ieeexplore.ieee.org.ezproxy1.lib.asu.edu/iel5/16/31855/01482355.pdf?tp=&arnumber=1482355&isnumber=31855 "Power Consumption in Multiplexed Liquid-Crystal Displays"], IEEE Transactions on Electron Devices, Vol. ED-29, No. 8, August 1982
 
*(1.25) B. W. Marks, [http://ieeexplore.ieee.org.ezproxy1.lib.asu.edu/iel5/16/31859/01482543.pdf?tp=&arnumber=1482543&isnumber=31859 "Power Reduction in Liquid-Crystal Display Modules"], IEEE Transactions on Electron Devices, Vol. ED-29, No. 12, December 1982
 
*(1.25) B. W. Marks, [http://ieeexplore.ieee.org.ezproxy1.lib.asu.edu/iel5/16/31859/01482543.pdf?tp=&arnumber=1482543&isnumber=31859 "Power Reduction in Liquid-Crystal Display Modules"], IEEE Transactions on Electron Devices, Vol. ED-29, No. 12, December 1982

Latest revision as of 15:39, 10 September 2007

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Display Technologies

General

Liquid Crystal Displays (LCD)

Flexible Displays

Electrophroetic Displays (EPD)

Some current characterization for electrophoretic suspension fluid.
Addressing. With a display thickness of 50micrometer and an average dielectric constant of 5.0, the capacitance per element would be ~0.055 pF.
EPD driver information and pixel level model
Section 3. To compensate for the leakage current, the storage capacitor must be very large; here, the capacitance is 34 pF. A polysilicon TFT is preferable to an amorphous silicon TFT for the switching transistor, because the large capacitor must be charged during the short pixel selection period.
EPD driven to produce greyscale
I. ...we have reported the world's first active-matrix EPD at an international electron device meeting (IEDM 2000)[12]. Since then, a few displays combining TFTs and microencapsulated electrophoretic materials have also been introduced [13]-[16].
I. Microencapsulated electrophoretic material in this EPD was driven by poly-Si TFTs fabricated with a low temperature process...
Good description of E-Ink displays and driver information

Colloidal suspension physics

Greyscale properties

Reflective Cholesteric Displays (ChLCDs)

Electro-wetting displays

Organic Light Emitting Diode (OLED)

Display Power

LCD greyscale single pixel power consumption formula
Addresses independant scaling of three color LED backlights based on image histogram
3.1: Whenever there is a screen change, the processor generates new data for the changing screen pixels and stores them into the framebuffer. This implies a higher energy consumption with increased temportal changes in the screen. Meanwhile, to maintain a screen on the LCD, the LCDC must sequentially read screen data from the frame-buffer and refresh the LCD pixels even when there is no screen change.
3.1: The display itself consists of several parts: LCD power circuitry, a front light, and an LCD. The LCDs used in the systems we studied are color active thin film transistor (TFT) LCDs. In such LCDs, each pixel has three comonents: R, G and B, signifying red, green and blue, respectively. Liquid crystals for each component are independently oriented by two polarizers, which are connected to a storage capacitor. The capacitor is in turn charged and discharged through a TFT to accommodate screen changes. Moreover, the capacitor must be refreshed at a high rate to maintain an appropriate voltage across the polarizers so that the corresponding liquid crystals remain properly oriented.
Backlight power: 200mW
Panel and Driver power: 20mW


Active Matrix (Thin Film Transistor, TFT)


Display Drivers

TFT characterization
LCD total pixel capacitance 5 pF
Roll-to-Roll manufacturing
Grayscale through pulse-width modulation

Image Quality


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