Search Results - "Riessle, M."

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  1. 1

    Band Time-Domain Multiplexing FMCW MIMO Radar for Far-Field 3-D Imaging by Bleh, Daniela, Rosch, Markus, Kuri, Michael, Dyck, Alexander, Tessmann, Axel, Leuther, Arnulf, Wagner, Sandrine, Weismann-Thaden, B., Stulz, H.-P, Zink, Martin, Riessle, M., Sommer, R., Wilcke, J., Schlechtweg, M., Yang, B., Ambacher, Oliver

    “…In this paper, a radar demonstrator system with real-time capability operating at W -band is presented. It operates at 90-100 GHz and provides 3-D information…”
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    Journal Article
  2. 2

    Metamorphic HEMT MMICs and Modules for Use in a High-Bandwidth 210 GHz Radar by Tessmann, A., Kallfass, I., Leuther, A., Massler, H., Kuri, M., Riessle, M., Zink, M., Sommer, R., Wahlen, A., Essen, H., Hurm, V., Schlechtweg, M., Ambacher, O.

    Published in IEEE journal of solid-state circuits (01-10-2008)
    “…In this paper, we present the development of advanced W-band and G-band millimeter-wave monolithic integrated circuits (MMICs) and modules for use in a…”
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    Journal Article Conference Proceeding
  3. 3

    Compact single-chip W-band FMCW radar modules for commercial high-resolution sensor applications by Tessmann, A., Kudszus, S., Feltgen, T., Riessle, M., Sklarczyk, C., Haydl, W.H.

    “…Two compact single-chip 94-GHz frequency-modulated continuous-wave (FMCW) radar modules have been developed for high-resolution sensing under adverse…”
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    Journal Article
  4. 4

    A Broadband 220-320 GHz Medium Power Amplifier Module by Tessmann, A., Leuther, A., Hurm, V., Massler, H., Wagner, S., Kuri, M., Zink, M., Riessle, M., Stulz, H.-P, Schlechtweg, M., Ambacher, O.

    “…In this paper, we present the development of an ultra-broadband H-band (220 - 325 GHz) submillimeter-wave monolithic integrated circuit (S-MMIC) medium power…”
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    Conference Proceeding
  5. 5

    High-gain submillimeter-wave mHEMT amplifier MMICs by Tessmann, A, Leuther, A, Massler, H, Hurm, V, Kuri, M, Zink, M, Riessle, M, Losch, R

    “…A compact H-band (220-325 GHz) submillimeter-wave monolithic integrated circuit (S-MMIC) amplifier has been developed, based on a grounded coplanar waveguide…”
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    Conference Proceeding
  6. 6

    A W-Band x12 Frequency Multiplier MMIC in Waveguide Package Using Quartz and Ceramic Transitions by Weber, R., Tessmann, A., Zink, M., Kuri, M., Stulz, H.-P, Riessle, M., Massler, H., Maier, T., Leuther, A., Schlechtweg, M., Kallfass, I.

    “…This paper describes a single-chip W-band frequency multiplier MMIC in a waveguide package. The multiplication factor by 12 has been obtained with a doubler,…”
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    Conference Proceeding
  7. 7

    A flip-chip packaged coplanar 94 GHz amplifier module with efficient suppression of parasitic substrate effects by Tessmann, A., Riessle, M., Kudszus, S., Massler, H.

    “…A flip-chip mounted W-band amplifier module with more than 15 dB gain between 82 and 105 GHz has been developed, based on a 0.15 μm GaAs PHEMT technology. To…”
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    Journal Article
  8. 8

    A 243 GHz LNA Module Based on mHEMT MMICs With Integrated Waveguide Transitions by Hurm, V., Weber, R., Tessmann, A., Massler, H., Leuther, A., Kuri, M., Riessle, M., Stulz, H. P., Zink, M., Schlechtweg, M., Ambacher, O., Narhi, T.

    “…For use in a millimeter-wave direct detection radiometer for earth remote sensing, we have developed a low-noise amplifier (LNA) module with a small-signal…”
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    Journal Article
  9. 9

    A Compact W-Band Dual-Channel Receiver Module by Tessmann, A., Kuri, M., Riessle, M., Massler, H., Zink, M., Reinert, W., Bronner, W., Leuther, A.

    “…A very compact W-band dual-channel receiver module has been developed for use in active and passive high-resolution imaging systems. The WR-10 waveguide module…”
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    Conference Proceeding
  10. 10

    Metamorphic HEMT Amplifier Circuits for Use in a High Resolution 210 GHz Radar by Tessmann, A., Leuther, A., Massler, H., Kuri, M., Riessle, M., Zink, M., Sommer, R., Wahlen, A., Essen, H.

    “…In this paper, we present the development of a W-band power amplifier (PA) circuit and a G-band low-noise amplifier (LNA) MMIC for use in a high-resolution…”
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    Conference Proceeding
  11. 11

    A 94 GHz single-chip FMCW radar module for commercial sensor applications by Tessmann, A., Kudszus, S., Feltgen, T., Riessle, M., Sklarczyk, C., Haydl, W.H.

    “…A single-chip 94 GHz frequency modulated continuous wave (FMCW) radar module has been developed for high resolution sensing under adverse conditions and…”
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    Conference Proceeding Journal Article
  12. 12

    Metamorphic HEMT MMICs and Modules Operating Between 300 and 500 GHz by Tessmann, A., Leuther, A., Hurm, V., Kallfass, I., Massler, H., Kuri, M., Riessle, M., Zink, M., Loesch, R., Seelmann-Eggebert, M., Schlechtweg, M., Ambacher, O.

    Published in IEEE journal of solid-state circuits (01-10-2011)
    “…In this paper, we present the development of submillimeter-wave monolithic integrated circuits (S-MMICs) and modules for use in next-generation sensors and…”
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    Journal Article Conference Proceeding
  13. 13

    A 300 GHz low-noise amplifier S-MMIC for use in next-generation imaging and communication applications by Tessmann, A., Leuther, A., Wagner, S., Massler, H., Kuri, M., Stulz, H.-P, Zink, M., Riessle, M., Merkle, T.

    “…A WR-3 (220-330 GHz) low-noise amplifier (LNA) circuit has been developed for use in next-generation high resolution imaging applications and ultra-high…”
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    Conference Proceeding
  14. 14

    A 600 GHz low-noise amplifier module by Tessmann, A., Leuther, A., Massler, H., Hurm, V., Kuri, M., Zink, M., Riessle, M., Stulz, H. P., Schlechtweg, M., Ambacher, O.

    “…A compact WR-1.5 (500-750 GHz) low-noise amplifier (LNA) circuit has been developed, based on a grounded coplanar waveguide (GCPW) technology utilizing 20 nm…”
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    Conference Proceeding
  15. 15

    A W-band active frequency-multiplier-by-six in waveguide package by Kallfass, I, Tessmann, A, Massler, H, Kuri, M, Riessle, M, Zink, M, Leuther, A

    “…We demonstrate a broadband active frequency-multiplier-by-six for the W-band (75-110 GHz), mounted in a waveguide package. The frequency-multiplying function…”
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    Conference Proceeding
  16. 16

    High-gain submillimeter-wave mHEMT amplifier MMICs by Tessmann, A., Leuther, A., Hurm, V., Massler, H., Zink, M., Riessle, M., Loesch, R., Kuri, M.

    “…A compact H-band (220-325 GHz) submillimeter-wave monolithic integrated circuit (S-MMIC) amplifier has been developed, based on a grounded coplanar waveguide…”
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    Conference Proceeding
  17. 17

    A 300 GHz mHEMT amplifier module by Tessmann, A., Leuther, A., Hurm, V., Massler, H., Zink, M., Kuri, M., Riessle, M., Losch, R., Schlechtweg, M., Ambacher, O.

    “…In this paper, we present the development of an H-band (220 - 325 GHz) submillimeter-wave monolithic integrated circuit (S-MMIC) amplifier module for use in…”
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    Conference Proceeding
  18. 18

    A Monolithic Integrated mHEMT Chipset for High-Resolution Submillimeter-Wave Radar Applications by Tessmann, A., Leuther, A., Massler, H., Lewark, U., Wagner, S., Weber, R., Kuri, M., Zink, M., Riessle, M., Stulz, H.-P, Schlechtweg, M., Ambacher, O., Sommer, R., Wahlen, A., Stanko, S.

    “…In this paper, we present the development of a millimeter-wave monolithic integrated circuit (MMIC) chipset for use in a high-resolution radar system operating…”
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    Conference Proceeding
  19. 19

    GaAs microstrip-to-waveguide transition operating in the WR-1.5 waveguide band (500-750 GHz) by Hurm, V., Tessmann, A., Massler, H., Leuther, A., Riessle, M., Zink, M., Schlechtweg, M., Ambacher, O.

    “…In this paper, we report on the development of a microstrip-to-waveguide transition for the WR-1.5 waveguide band (500-750 GHz). The microstrip lines and…”
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    Conference Proceeding
  20. 20

    A 243 GHz low-noise amplifier module for use in next-generation direct detection radiometers by Tessmann, A., Hurm, V., Leuther, A., Massler, H., Weber, R., Kuri, M., Riessle, M., Stulz, H. P., Zink, M., Schlechtweg, M., Ambacher, O., Narhi, T.

    “…A compact H-band (220-325 GHz) low-noise amplifier circuit has been developed, based on a grounded coplanar waveguide (GCPW) technology utilizing 50 nm…”
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    Conference Proceeding