Electronic module with organic logic circuit elements

Information

  • Patent Grant
  • 7589553
  • Patent Number
    7,589,553
  • Date Filed
    Tuesday, February 21, 2006
    18 years ago
  • Date Issued
    Tuesday, September 15, 2009
    14 years ago
Abstract
The invention relates to an electronic module having two or more organic circuit elements connected together to give a logic circuit, said organic circuit elements being made up of organic components, in particular organic field effect transistors. The logic circuit comprises at least one filter module (5), which has an input (53) connected to one of the organic logic circuit elements, and an output (55), and is designed to filter out from the signals present at the input (53) the spurious signals generated by different signal propagation times in the organic components of the logic circuit elements, and to provide a regenerated binary signal at the output (55).
Description

This application is a 371 of PCT EP06/001523 filed on Feb. 21, 2006.


The invention relates to an electronic module having two or more logic circuit elements connected together to give a logic circuit, said logic circuit elements being made up of organic components, in particular organic field effect transistors.


Logic circuit elements such as NAND-gates, NOR-gates or inverters are elementary components of a digital electronic circuit. The switching speed of the logic circuit elements making up the digital electronic circuit largely determines the switching speed of the digital circuit.


In conventional silicon semiconductor technology, logic gates are implemented using n-type and p-type transistors, enabling extremely high switching speeds to be achieved for the gates.


It is also known to construct logic gates from organic components. In this case, a traditional resistor is normally used in place of the n-type transistor, and the p-type transistors are substituted by organic field effect transistors. The disadvantage with these logic gates using organic field effect transistors is that they either switch over slowly (when the charge-transfer currents are very different, i.e. the integrals under the current-voltage curve differ widely) or they cannot be switched off (when the difference in voltage in the current-voltage diagram is too small).


In order to increase the switching speed of digital circuits manufactured in organic semiconductor technology, WO 2003/081 671 A3 proposes to replace the resistor in logic gates with a second organic field effect transistor that is used as a resistor. To do this, organic field effect transistors are used that have an extremely thin organic semiconductor layer (approximately 5 to 30 nm), or in which the conductivity of the organic semiconductor layer has been reduced by selective treatment (e.g. by hydrazine treatment and/or selective oxidization) to such an extent that the OFF currents are only approximately one order of magnitude lower than the ON currents.


The object of the invention is thus to increase further the processing speed that can be achieved by a digital circuit made up of organic components.


This object is achieved by an electronic module having two or more organic logic circuit elements connected together to give a logic circuit, said logic circuit elements being made up of organic components, in which the logic circuit comprises at least one filter module, which has an input connected to one of the organic logic circuit elements, and an output, and which filters out from the signal present at the input the spurious signals generated by different signal propagation times in the organic components of the logic circuit elements, and provides a regenerated binary signal at the output.


Owing to the low charge carrier mobility of organic semiconductors available today, and because of the different operating principle of organic field effect transistors, the switching speeds that can be achieved by digital circuits made up of organic components are orders of magnitude lower than those made in silicon technology.


The invention is based on the knowledge that synchronization problems occur when increasing the clock rate in more complex organic circuits in which different signals are combined that have been processed by different numbers of organic components. The edges of one signal are delayed compared to another, which means that when these signals are combined, short spurious noise signals appear in the combined output signal. These noise spikes cause significant problems in the further processing of the signal, because these errors then continue to accumulate and consequently are interpreted incorrectly as part of the wanted signal. This spurious noise is removed by the filter module described above. This makes it possible to operate the digital circuit at a higher clock rate and hence to increase the speed of data processing.


Advantageous embodiments of the invention are described in the subclaims.


Organic logic gates such as AND-gates, OR gates, NAND gates, NOR-gates or inverters, or even more complex organic logic circuit elements such as shift registers or adders, can be used, for example, as organic logic circuit elements connected together to give the logic circuit. Depending on the complexity of the logic circuit, one or more filter modules are incorporated in the logic circuit, where increasing the number of filter modules used normally makes it possible to increase the processing speed of the digital circuit. The filter modules can be connected here between two organic logic circuit elements, so that both the input of the filter module and the output of the filter module are connected to a logic circuit element. It is also possible, however, to arrange the filter module at an output of the logic circuit, so that only the input of the filter module is connected to a logic circuit element of the logic circuit, and the output of the filter module is connected to an output of the logic circuit.


The filter module is preferably connected to the output of an organic logic circuit element that combines by a logic operation a plurality of binary input signals generated via different branches of the logic circuit to produce an output signal.


According to a preferred exemplary embodiment of the invention, the filter module comprises a low-pass filter and a subsequent discretization amplifier circuit. The low-pass filter is designed here to filter out the noise spikes generated by different signal propagation times in the organic components of the preceding logic circuit elements. The cut-off frequency of the low-pass filter is selected so as to attenuate the amplitude of the noise spikes between 50 and 70%, for example. The noise spikes are thus eliminated by the subsequent discretization amplifier circuit. In addition, the edge delay of a subsequent H-level (H=High) of the wanted signal is thereby kept to a minimum.


The low-pass filter is preferably designed as an RC low-pass filter and can hence be implemented cheaply in an integrated circuit.


The filter module is made up of organic components. The filter module here preferably comprises a resistor and a discretization amplifier circuit made up of organic components. The RC low-pass filter is formed by the resistor and the input capacitance of the amplifier circuit. In a particularly low-cost design of the filter module, the resistor and the gate-source capacitance of the first organic field effect transistor of the amplifier circuit form the RC low-pass filter in this case. These two components are selected so as to produce an RC low-pass filter having a cut-off frequency that is suitable for filtering out the noise spikes produced by the different signal propagation times in the organic components of the preceding logic circuit elements. The cut-off frequency of the low-pass filter must hence be selected according to the noise spikes produced by the different signal propagation times in the organic components of the logic circuit elements. These noise spikes depend not only on the preceding logic circuit elements and the connection of these logic circuit elements, but also on the clock frequency used to operate the logic circuit, and can be determined by measurement or simulation, for example.


Such a filter module can be implemented using a small number of components, and hence can be integrated in a logic circuit at low cost.


According to another preferred exemplary embodiment of the invention, the filter module is made up of a plurality of organic components, which are connected together so that the filter module only transfers the level of the signal present at the input to the output at specific points in time set by a separate clock signal, and for the rest of the time retains the last previous level at the output. The clock signal is thereby phase-shifted with respect to the clock of the wanted signal present at the input of the filter module. The phase shift is selected here so that there is no possibility of a spurious signal appearing at the input of the filter module at the time of the transfer, and hence the filter module transfers a correct signal level. This signal level is then retained by the filter module for the rest of the clock period, so that a signal without noise spikes is produced at the output.


Good results can be achieved by the separate clock signal being phase-shifted with respect to the clock of the signal present at the input by between 90 and 270°, preferably by about 180°. According to a further exemplary embodiment of the invention, the phase shift is selected so that the glitches produced by different signal propagation times in the organic components of the preceding logic circuit elements lie at least 0.2 period lengths away from the time of the transfer. To do this, it is necessary to determine the phase relation of the glitches by measurement or simulation, and to select a phase shift of the separate clock signal that is appropriate to this relationship.


The separate clock signal for the filter module is preferably provided by a ring oscillator made up of organic field effect transistors. The separate clock signal is preferably provided in this case by the ring oscillator that generates the clock signal for the logic circuit.


In this case, the clock signal generated by the ring oscillator can be supplied to the filter module via one or more series-connected delay elements in order to achieve thereby the required phase relationship between the separate clock signal and the wanted signal at the input of the filter module (normally, because of the signal propagation times, this does not equal the phase of the clock signal generated by the ring oscillator for the logic circuit).


The component costs can be reduced further by, in the ring oscillator, which comprises a plurality of organic circuit elements chained together in a ring one after another, the clock signal for the logic circuit being taken from a first output of a first circuit element, and a separate clock signal for the filter module being taken from an output of a second circuit element after the first circuit element. By this means, it is even possible to supply two or more filter modules with mutually phase-shifted and respectively appropriate separate clock signals for very low component costs.


The electronic module according to the invention can be used for a multiplicity of applications. One application to be given specific mention here is the use of the electronic module according to the invention as an RFID transponder or as a security element, in particular to protect important documents and goods. In this case, the electronic module according to the invention is preferably in the form of a flexible foil element, which is connected by an adhesive layer to the object to be protected, for example important paperwork such as a passport or a banknote.





The invention is described below with reference to a number of exemplary embodiments using the enclosed drawings by way of example.



FIG. 1 shows a schematic diagram of an electronic module according to the invention.



FIG. 2 shows a circuit diagram of a filter module for the electronic module shown in FIG. 1.



FIG. 3 shows a number of timing diagrams to illustrate the signal transfer in the electronic module shown in FIG. 1.



FIG. 4 shows a circuit diagram of a further embodiment of a filter module for the electronic module shown in FIG. 1.



FIG. 5 shows a number of timing diagrams to illustrate the signal transfer in the electronic module shown in FIG. 1.



FIG. 6 shows a schematic diagram of a section of another electronic module according to the invention.






FIG. 1 shows an electronic module 10 made of a flexible, multilayer foil body containing one or more electrical functional layers.


The electrical functional layers of the foil body comprise (organically) conducting layers, organically semi-conducting layers and/or organic insulating layers, which are arranged one on top of the other in at least partially patterned form. In addition to these electrical functional layers, the multilayer foil body optionally also includes one or more substrate layers, protective layers, decorative coatings, bonding layers or adhesive layers. The electrically conducting functional layers are made of a conductive patterned metallization, preferably of gold or silver. It can also be provided, however, to form this functional layer from an inorganic electrically conducting material, for example indium tin oxide or a conducting polymer such as polyaniline or polypyrol. The organically semi-conducting functional layer is made of conjugated polymers, for example, such as polythiophenes, polyphenylvinylenes or polyfluorene derivatives, which are applied as a solution by spin-coating, blade-coating or screen-printing. “Small molecules”, i.e. oligomers such as sexithiophenes or pentacenes, applied by vacuum deposition are also suitable as an organic semiconductor layer. These organic layers are preferably applied fully or partially pre-patterned by a printing technique (gravure printing, screen printing, pad printing). For this purpose, the organic materials provided for the layers are formed as soluble polymers, where the term polymer in this case also includes oligomers and “small molecules”, as already described above.


The electrical functional layers of the foil body are designed here to implement the electrical circuits explained below.


The electronic module 10 is an RFID transponder having an antenna resonant circuit 11, a rectifier 12, a modulator 13 and a digital logic circuit 2. It is also possible, however, that the electronic module 10 shown in FIG. 1 is an electronic module that serves another purpose and has a digital logic circuit. The design of the electronic module 10 as a flexible, multilayer foil element in polymer semiconductor technology means that the electronic module 10 is particularly suitable for security applications and for mass applications. In addition to the functional groups shown in FIG. 1, it is particularly advantageous for such types of applications if the electronic module 10 also has a display element fabricated in organic technology, for example an LC display, which is controlled by the logic circuit 2.


The logic circuit 2 is composed of a plurality of logic circuit elements connected together. The individual logic circuit elements are logic gates, for example, such as NOR_gates, NAND-gates or inverters, or even more complex logic circuit elements such as shift registers, adders etc. The individual logic circuit elements of the logic circuit 2 are here preferably made up of organic field effect transistors as described in WO 03/081 671 A2, in order to achieve as high a switching speed as possible for the individual logic circuit elements.



FIG. 1 shows a section of the logic circuit 2 containing a plurality of logic circuit elements 21 and a plurality of filter modules 22, 23 and 24 connected together to produce a logic function. The connection of the logic circuit elements 21 shown in FIG. 1 is chosen purely arbitrarily simply in order to illustrate the invention, and the connection that is chosen must depend on the logic function to be achieved.


As shown in FIG. 1, the filter modules 22, 23 and 24 are connected between the logic circuit elements 21 of the logic circuit 2. The filter modules 22, 23 and 24 have an input that is connected to an output of one of the organic logic circuit elements 21, and an output that is either connected to an input of another of the logic circuit elements 21 or to an output of the logic circuit 2. The filter modules 22, 23 and 24 each filter out from the signal present at the input, spurious signals generated by different signal propagation times in the organic components of the preceding logic circuit elements, and provide a regenerated binary signal at the output.


The filter module 22 comprises an electronic circuit 3, as shown in FIG. 2 for example. How the filter module 22 works is now explained below with reference to FIG. 3.



FIG. 3 shows a number of timing diagrams 41 to 45, each of which show the waveform of a signal level V at a point in the logic circuit 2, i.e. the signal level V is plotted against time t.


Timing diagrams 41 and 42 show the waveform of the input signals at the inputs of the logic circuit element preceding the filter module 22. The timing diagram 43 shows the waveform of the output signal at the output of this logic circuit element. The logic circuit element is a NOR-gate in this case by way of example.


The clock of the wanted signal at the respective point of the logic circuit 2 is indicated by dashed lines in the timing diagrams 41 to 45, where it should also be noted here that this clock may be different at the input and output of the logic circuit element and at the input and output of the filter module 22 because of the signal propagation times through the logic circuit element and through the filter module.


The switching response of the organic components in the logic circuit elements preceding the logic circuit element illustrated in the timing diagrams 41 to 43 produces in the input signals applied to this logic circuit element the time offset shown in the timing diagrams 41 and 42. If the two input signals are combined by the logic circuit element, then the output signal shown in timing diagram 43 is produced, which contains glitches 46. The signal distorted by the glitches 46 is now input to the filter module 22. The filter module 22 suppresses all spurious signals that are appreciably shorter than the clock period of the wanted signal and thereby obtains an output signal free from unwanted signals. The filter module 22 is composed of a low-pass filter, which attenuates clock pulses that are appreciably shorter than the clock period of the wanted signal, and a subsequent discretization amplifier circuit.


The filter module 22 thus consists of the circuit 3 shown in FIG. 2, for example, containing a resistor 35, two organic field effect transistors 38 and 39 and two organic load elements 36 and 37. The organic field effect transistors 38 and 39 and the organic load elements 36 and 37 form a discretization amplifier circuit. The organic load elements 36 and 37 may be the special organic field effect transistors described in WO 03/981 671 A2, which simulate a resistor. The resistor 35 is preferably an organic resistor. The circuit 3 also has a terminal 32 for the input signal, a terminal 34 for the output signal, a terminal 31 for the supply voltage and a ground terminal 33.


The resistor 35 is used with the input capacitance of the amplifier stage as an RC low-pass filter, which appreciably attenuates the glitches 46 of relatively short duration, but which only has a slight effect on the slower wanted signal. The RC low-pass filter is thus implemented by the resistor 35 in conjunction with the gate-source capacitance of the organic field effect transistor 38. The signal present at the output of the RC low-pass filter is shown in the timing diagram 44. The glitches 46 are attenuated to the glitches 47 by the RC low-pass filter. The subsequent amplifier stage not only restores the edge steepness of the wanted signal, which was degraded in the RC low-pass filter, but also removes the attenuated glitches 47 completely from the signal by discretization to two digital levels. The signal shown in timing diagram 45, from which the spurious noise has been removed, is then present at the output of the amplifier stage.


The cutoff frequency of the RC low-pass filter is preferably at least twice as high, preferably three to four times as high, as the clock frequency of the wanted signal.


The filter module 23 is formed from a circuit 5 shown in FIG. 4. Operation of the filter module 23 is now is explained below with reference to the timing diagrams shown in FIG. 5.



FIG. 5 shows a number of timing diagrams 61 to 64, which show the waveform of the signal level at different points in the logic circuit 2. The signal level V is plotted against time t in the timing diagrams 61 to 64. As in FIG. 3, the clock of the wanted signal is again indicated here by dashed lines.


The signal shown in timing diagram 63, which is distorted by glitches 66, is present at the input of the tilter module 23. The glitches 66 arise in this case as a result of the different signal propagation time in the organic components of the preceding logic circuit elements caused by the switching response of the organic components, as already explained above with reference to FIG. 3.


The filter module 23 now suppresses the glitches 66 and provides at the output the regenerated binary signal shown in timing diagram 64. To do this, the filter module 23 only transfers the level of the input signal to the output at specific times set by a separate clock signal. For the rest of the time, the filter module 23 retains the last previous level at the output. Thus the timing diagram 63 shows a plurality of time points 67, which are set by the separate clock signal and at which the input level is transferred to the output by the filter module 23.


By a suitable phase shift of the clock signal, for example by the 180° phase shift shown in the timing diagram 63, the situation is achieved in which there is no possibility of a spurious signal appearing at the input of the filter module 23 at the time of the transfer, and hence the filter module transfers the correct signal level. As shown in the timing diagram 63, the glitches 66 have already decayed away at the is time points 67, so that the correct signal level is present there. This signal level is then also retained by the filter module 23 for the rest of the clock period, so that the signal without noise spikes shown in timing diagram 64 is produced at the output


The circuit 5 shown in FIG. 4 presents a possible implementation of the filter module 23 in organic semiconductor technology. The circuit 5 comprises a plurality of organic field effect transistors T and a plurality of organic load elements L connected together as shown in FIG. 4. The circuit 4 has a terminal 53 for the input signal, a terminal 54 for the external clock signal, a terminal 55 for the output signal, a terminal 51 for the supply voltage and a ground terminal 54.


The external clock signal is here extracted from the clock of the wanted signal by one or more series-connected delay elements. Inverters made up of organic components, for example, can be used as delay elements. In a preferred embodiment of the invention, the separate clock signal is generated from the clock signal that sets the processing timing of the logic circuit 2. The phase relationship between this clock signal and the clock of the wanted signal present at the input of the filter module 23, and the required phase shift of the separate clock signal with respect to the clock of the wanted signal must be determined. Then an appropriate number of delay elements are chained together to generate the required separate clock signal.


Another option for generating the separate clock signal is now illustrated with reference to the exemplary embodiment shown in FIG. 6.



FIG. 6 shows an electronic module 7 comprising a logic circuit 71 and an oscillator 75.


The logic circuit 71 has the same composition as the logic circuit 2 of FIG. 1, and has a multiplicity of logic circuit elements connected together. In addition, a plurality of filter modules are provided, which have the same design as the filter module 23 of FIG. 1. Of these filter modules, three filter modules 72, 73 and 74 are shown in FIG. 6. The oscillator 75 provides a plurality of clock signals 80, 81, 82 and 83. The clock signal 80 constitutes the clock signal of the logic circuit 71 and sets the data processing speed of the logic circuit 71. The clock signals 81 to 83 are supplied to the filter modules 72 to 74 as separate clock signals.


The oscillator 75 comprises a multiplicity of organic circuit elements 76 chained together in a ring. The organic circuit elements are inverters, for example, made up of organic field effect transistors As shown in FIG. 6, the clock signals 80 to 83 are picked off at the outputs of different organic circuit elements 76, so that the clock signals 80 to 83 are mutually phase-shifted.


As already explained above, the phase shift of the respective separate clock signal with respect to the clock signal 80 is determined, and then that member of the organic circuit elements 76 is determined whose output signal has the required phase shift compared with the signal present at the clock-signal pick-off point.

Claims
  • 1. An electronic module having two or more organic logic circuit elements interconnected to form a logic circuit, said organic logic circuit elements each comprising organic components, the electronic module comprising: a logic circuit comprising at least one filter module, which has an input connected to one of the organic logic circuit elements, and an output, and is arranged to filter out from a signal present at the logic circuit input spurious signals generated by different signal propagation times in the organic components of the logic circuit elements, and to regenerate a binary signal at the output; andthe filter module comprises a plurality of organic components, which are interconnected so that the filter module transfers the level of the signal present at the logic circuit input to the logic circuit output at specific points in time set by a separate clock signal and for the rest of the time of said input signal retains the last previous level of a signal at the output , where the separate clock signal is phase-shifted with respect to a clock of the signal present at the logic circuit input.
  • 2. The electronic module as claimed in claim 1 wherein the separate clock signal is phase-shifted with respect to the clock of the signal present at the logic circuit input at and between 90° and 270°.
  • 3. The electronic module as claimed in claim 1 wherein the phase shift is selected so that glitches produced by different signal propagation times in the organic components of a preceding logic circuit elements lie at least 0.2 period lengths away from the time of the transfer.
  • 4. The electronic module as claimed in claim 1 wherein the electronic module comprises a ring oscillator comprising field effect transistors, which oscillator provides the separate clock signal for the filter module.
  • 5. The electronic module as claimed in claim 4 wherein the ring oscillator provides the separate clock signal for two or more filter modules.
  • 6. The electronic module as claimed in claim 4 wherein the ring oscillator provides a clock signal for the logic circuit.
  • 7. The electronic module gas claimed in claim 6 wherein the ring oscillator comprises a plurality of organic circuit elements chained together in a ring one after another, the clock signal for the logic circuit being taken from the output of a first circuit element of the circuit elements, and that the separate clock signal for the filter module is taken from the output of a second circuit element after the first circuit element.
  • 8. The electronic module as claimed in claim 7 wherein the second circuit element at whose output the separate clock signal is taken, is determined from the number of logic circuit elements preceding the filter module.
  • 9. The electronic module as claimed in claim 1 wherein the input clock signal of the logic circuit is supplied to one or more series-connected delay elements each having an output, which elements are connected at their output to the filter module, and which supply a delayed input clock signal to the filter module as the separate clock signal.
  • 10. The electronic module as claimed in claim 1 wherein the filter module is connected to the output of a logic circuit element that combines by a logic operation a plurality of binary input signals generated via different branches of the logic circuit to produce an output signal.
  • 11. The electronic module as claimed in claim 1 wherein both the input and the output of the filter module are connected to an organic logic circuit element.
  • 12. The electronic module as claimed in claim 1 wherein the output of the filter module is connected to an output of the logic circuit.
  • 13. The electronic module as claimed in claim 1 wherein the logic circuit comprises two or more filter modules.
  • 14. The electronic module as claimed in claim 1 wherein the electronic module is an RFID transponder.
  • 15. The electronic module as claimed in claim 1 wherein the logic circuit comprises a flexible foil element and includes a circuit arranged to operate as a security element.
Priority Claims (1)
Number Date Country Kind
10 2005 009 820 Mar 2005 DE national
PCT Information
Filing Document Filing Date Country Kind 371c Date
PCT/EP2006/001523 2/21/2006 WO 00 10/15/2007
Publishing Document Publishing Date Country Kind
WO2006/092216 9/8/2006 WO A
US Referenced Citations (120)
Number Name Date Kind
3512052 MacIver et al. May 1970 A
3769096 Ashkin Oct 1973 A
3955098 Kawamoto May 1976 A
3999122 Winstel et al. Dec 1976 A
4246298 Guarnery Jan 1981 A
4302648 Sado et al. Nov 1981 A
4340057 Bloch Jul 1982 A
4442019 Marks Apr 1984 A
4554229 Small Nov 1985 A
4865197 Craig Sep 1989 A
4926052 Hatayama May 1990 A
4937119 Nickles et al. Jun 1990 A
5075816 Stormbom Dec 1991 A
5173835 Cornett et al. Dec 1992 A
5206525 Yamamoto et al. Apr 1993 A
5259926 Kuwabara et al. Nov 1993 A
5321240 Takihira Jun 1994 A
5347144 Garnier et al. Sep 1994 A
5364735 Akamatsu Nov 1994 A
5395504 Hoffman et al. Mar 1995 A
5480839 Ezawa et al. Jan 1996 A
5486851 Gehner et al. Jan 1996 A
5502396 Desarzens Mar 1996 A
5528222 Moskowitz Jun 1996 A
5546889 Wakita et al. Aug 1996 A
5569879 Gloton Oct 1996 A
5574291 Dodabalapur et al. Nov 1996 A
5578513 Maegawa Nov 1996 A
5580794 Allen Dec 1996 A
5625199 Baumbach et al. Apr 1997 A
5629530 Brown et al. May 1997 A
5630986 Charlton May 1997 A
5652645 Jain Jul 1997 A
5691089 Smayling Nov 1997 A
5693956 Shi Dec 1997 A
5705826 Aratani et al. Jan 1998 A
5729428 Sakata et al. Mar 1998 A
5854139 Kondo et al. Dec 1998 A
5869972 Birch et al. Feb 1999 A
5883397 Isoda et al. Mar 1999 A
5892244 Tanaka et al. Apr 1999 A
5946551 Dimitrakopoulos et al. Aug 1999 A
5956378 Soda Sep 1999 A
5967048 Fromson et al. Oct 1999 A
5970318 Choi et al. Oct 1999 A
5973598 Beigel Oct 1999 A
5994773 Hirakawa Nov 1999 A
5994933 Yamanaka et al. Nov 1999 A
5997817 Crismore et al. Dec 1999 A
5998805 Shi et al. Dec 1999 A
6036919 Thym et al. Mar 2000 A
6045977 Chandross et al. Apr 2000 A
6060338 Tanaka et al. May 2000 A
6072716 Jacobsen et al. Jun 2000 A
6083104 Choi Jul 2000 A
6087196 Sturm et al. Jul 2000 A
6133835 DeLeeuw et al. Oct 2000 A
6150668 Bao Nov 2000 A
6180956 Chondroudis Jan 2001 B1
6197663 Chandross Mar 2001 B1
6207472 Calligari et al. Mar 2001 B1
6215130 Dodabalapur Apr 2001 B1
6221553 Wolk Apr 2001 B1
6251513 Rector Jun 2001 B1
6284562 Batlogg et al. Sep 2001 B1
6291126 Wolk et al. Sep 2001 B2
6300141 Segal et al. Oct 2001 B1
6321571 Themont et al. Nov 2001 B1
6322736 Bao Nov 2001 B1
6329226 Jones Dec 2001 B1
6330464 Colvin Dec 2001 B1
6335539 Dimitrakopoulos et al. Jan 2002 B1
6336017 Miyamoto et al. Jan 2002 B1
6340822 Brown et al. Jan 2002 B1
6342818 Segawa et al. Jan 2002 B1
6344662 Dimitrakopoulos et al. Feb 2002 B1
6362509 Hart Mar 2002 B1
6384804 Dodabalapur et al. May 2002 B1
6403396 Gudesen et al. Jun 2002 B1
6429450 Mutsaers et al. Aug 2002 B1
6498114 Amundson et al. Dec 2002 B1
6517955 Takada et al. Feb 2003 B1
6518949 Drazic Feb 2003 B2
6521109 Bartic et al. Feb 2003 B1
6548875 Nishiyama Apr 2003 B2
6555840 Hudson Apr 2003 B1
6593690 McCormick Jul 2003 B1
6603139 Tessler Aug 2003 B1
6621098 Jackson Sep 2003 B1
6852583 Bernds et al. Feb 2005 B2
6903958 Bernds et al. Jun 2005 B2
6960489 Bernds et al. Nov 2005 B2
7223995 Fix et al. May 2007 B2
7406297 Osada Jul 2008 B2
20010026187 Oku Oct 2001 A1
20010046081 Hayashi et al. Nov 2001 A1
20010048341 Chakravarthy Dec 2001 A1
20020018911 Bernius et al. Feb 2002 A1
20020022284 Heeger Feb 2002 A1
20020025391 Angelopoulos Feb 2002 A1
20020053320 Duthaler May 2002 A1
20020056839 Joo et al. May 2002 A1
20020068392 Lee et al. Jun 2002 A1
20020130042 Moerman et al. Sep 2002 A1
20020170897 Hall Nov 2002 A1
20020195644 Dodabalapur et al. Dec 2002 A1
20030059987 Sirringhaus et al. Mar 2003 A1
20030070500 Hung Apr 2003 A1
20030112576 Brewer et al. Jun 2003 A1
20030141807 Kawase Jul 2003 A1
20030178620 Bernds et al. Sep 2003 A1
20040002176 Xu Jan 2004 A1
20040013982 Jacobson et al. Jan 2004 A1
20040026689 Bernds et al. Feb 2004 A1
20040084670 Tripsas et al. May 2004 A1
20040119504 Baude et al. Jun 2004 A1
20040211329 Funahata et al. Oct 2004 A1
20040233065 Freeman Nov 2004 A1
20040256467 Clemens et al. Dec 2004 A1
20050156641 Dimmler et al. Jul 2005 A1
Foreign Referenced Citations (180)
Number Date Country
2102735 Aug 1972 DE
33 38 597 May 1985 DE
41 03 675 Aug 1992 DE
692 32 740 Apr 1993 DE
42 43 832 Jun 1994 DE
43 12 766 Oct 1994 DE
196 29 291 Jan 1997 DE
195 06 907 Sep 1998 DE
198 52 312 May 1999 DE
198 16 860 Nov 1999 DE
199 18 193 Nov 1999 DE
198 51 703 May 2000 DE
100 06 257 Sep 2000 DE
199 21 024 Nov 2000 DE
199 33 757 Jan 2001 DE
695 19 782 Jan 2001 DE
199 35 527 Feb 2001 DE
199 37 262 Mar 2001 DE
100 12 204 Sep 2001 DE
100 33 112 Jan 2002 DE
201 11 825 Feb 2002 DE
100 43 204 Apr 2002 DE
100 45 192 Apr 2002 DE
100 47 171 Apr 2002 DE
100 58 559 May 2002 DE
100 61 297 Jun 2002 DE
101 17 663 Oct 2002 DE
101 20 687 Oct 2002 DE
101 20 686 Nov 2002 DE
101 51 440 Feb 2003 DE
101 41 440 Mar 2003 DE
101 63 267 Jul 2003 DE
102 09 400 Oct 2003 DE
102 19 905 Dec 2003 DE
103 41 962 Apr 2004 DE
699 13 745 Oct 2004 DE
0 108 650 May 1984 EP
0 128 529 Dec 1984 EP
0 268 370 May 1988 EP
0 268 370 May 1988 EP
0 350 179 Jan 1990 EP
0 418 504 Mar 1991 EP
0 442 123 Aug 1991 EP
0 460 242 Dec 1991 EP
0 501 456 Sep 1992 EP
0 501 456 Sep 1992 EP
0 511 807 Nov 1992 EP
0 528 662 Feb 1993 EP
0 603 939 Jun 1994 EP
0 615 256 Sep 1994 EP
0 685 985 Dec 1995 EP
0 716 458 Jun 1996 EP
0 716 458 Jun 1996 EP
0 785 578 Jul 1997 EP
0 785 578 Jul 1997 EP
0 786 820 Jul 1997 EP
0 690 457 Dec 1999 EP
0 962 984 Dec 1999 EP
0 962 984 Dec 1999 EP
0 966 182 Dec 1999 EP
0 979 715 Feb 2000 EP
0 981 165 Feb 2000 EP
0 989 614 Mar 2000 EP
1 048 912 Nov 2000 EP
1 052 594 Nov 2000 EP
1 065 725 Jan 2001 EP
1 065 725 Jan 2001 EP
1 083 775 Mar 2001 EP
1 102 335 May 2001 EP
1 103 916 May 2001 EP
1 104 035 May 2001 EP
1 113 502 Jul 2001 EP
1 134 694 Sep 2001 EP
1 170 851 Jan 2002 EP
1 224 999 Jul 2002 EP
1 237 207 Sep 2002 EP
1251458 Oct 2002 EP
1251458 Oct 2002 EP
1 296 280 Mar 2003 EP
1 318 084 Jun 2003 EP
2793089 Nov 2000 FR
723598 Feb 1955 GB
2 058 462 Apr 1981 GB
2001P20024 Aug 2000 GR
2001P03239 Jan 2001 GR
54069392 Jun 1979 JP
60117769 Jun 1985 JP
61001060 Jan 1986 JP
61167854 Jul 1986 JP
62065472 Mar 1987 JP
362065477 Mar 1987 JP
63205943 Aug 1988 JP
01169942 Jul 1989 JP
2969184 Dec 1991 JP
03290976 Dec 1991 JP
05152560 Jun 1993 JP
05259434 Oct 1993 JP
05347422 Dec 1993 JP
08197788 Aug 1995 JP
09083040 Mar 1997 JP
09320760 Dec 1997 JP
10026934 Jan 1998 JP
2001085272 Mar 2001 JP
WO 9316491 Aug 1993 WO
WO 9417556 Aug 1994 WO
WO 9506240 Mar 1995 WO
WO 9531831 Nov 1995 WO
WO 9602924 Feb 1996 WO
WO 9619792 Jun 1996 WO
WO 9712349 Apr 1997 WO
WO 9718944 May 1997 WO
WO 9818156 Apr 1998 WO
WO 9818186 Apr 1998 WO
WO 9840930 Sep 1998 WO
WO 9907189 Feb 1999 WO
WO 9910929 Mar 1999 WO
WO 9910939 Mar 1999 WO
WO 9921233 Apr 1999 WO
WO 9930432 Jun 1999 WO
WO 9939373 Aug 1999 WO
WO 9940631 Aug 1999 WO
WO 9953371 Oct 1999 WO
WO 9954842 Oct 1999 WO
WO 9954936 Oct 1999 WO
WO 9966540 Dec 1999 WO
WO 0007151 Feb 2000 WO
WO 0033063 Jun 2000 WO
WO 0036666 Jun 2000 WO
WO 0079617 Dec 2000 WO
WO 0103126 Jan 2001 WO
WO 0106442 Jan 2001 WO
WO 0108241 Feb 2001 WO
WO 0115233 Mar 2001 WO
WO 0117029 Mar 2001 WO
WO 0117041 Mar 2001 WO
WO 0127998 Apr 2001 WO
WO 0146987 Jun 2001 WO
WO 0147044 Jun 2001 WO
WO 0147044 Jun 2001 WO
WO 0147045 Jun 2001 WO
WO 0169517 Sep 2001 WO
WO 0173109 Oct 2001 WO
WO 0173109 Oct 2001 WO
WO 0205360 Jan 2002 WO
WO 0205361 Jan 2002 WO
WO 0215264 Feb 2002 WO
WO 0217233 Feb 2002 WO
WO 0219443 Mar 2002 WO
WO 0221612 Mar 2002 WO
WO 0229912 Apr 2002 WO
WO 0243071 May 2002 WO
WO 0247183 Jun 2002 WO
WO 02065557 Aug 2002 WO
WO 02071139 Sep 2002 WO
WO 02071505 Sep 2002 WO
WO 02076924 Oct 2002 WO
WO 02091495 Nov 2002 WO
WO 02091495 Nov 2002 WO
WO 02095805 Nov 2002 WO
WO 02095805 Nov 2002 WO
WO 02099907 Dec 2002 WO
WO 02099908 Dec 2002 WO
WO 03027948 Apr 2003 WO
WO 03036686 May 2003 WO
WO 03038897 May 2003 WO
WO 03046922 Jun 2003 WO
WO 03057501 Jul 2003 WO
WO 03067680 Aug 2003 WO
WO 03069552 Aug 2003 WO
WO 03081671 Oct 2003 WO
WO 03095175 Nov 2003 WO
WO 2004032257 Apr 2004 WO
WO 2004042837 May 2004 WO
WO 2004042837 May 2004 WO
WO 2004047144 Jun 2004 WO
WO 2004047144 Jun 2004 WO
WO 2004047194 Jun 2004 WO
WO 2004047194 Jun 2004 WO
WO 2004083859 Sep 2004 WO
WO 2005004194 Jan 2005 WO
Related Publications (1)
Number Date Country
20080204069 A1 Aug 2008 US