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DESCRIPTION:Abstract: Quantum computing is a new paradigm that exploits fun
 damental principles of quantum mechanics\, such as superposition and entan
 glement\, to tackle problems in mathematics\, chemistry and material scien
 ce that are well beyond the reach of supercomputers. Despite the intensive
  worldwide race to build a useful quantum computer\, it is projected to ta
 ke decades before reaching the state of useful quantum supremacy. The main
  challenge is that qubits operate at the atomic level\, thus are extremely
  fragile\, and difficult to control and read out. The current state-of-art
  implements a few dozen magnetic-spin based qubits in a highly specialized
  technology and cools them down to a few tens of millikelvin. The high cos
 t of cryogenic cooling prevents its widespread use. A companion classical 
 electronic controller\, needed to control and read out the qubits\, is mos
 tly realized with room-temperature laboratory instrumentation. This makes 
 it bulky and nearly impossible to scale up to the thousands or millions of
  qubits needed for practical quantum algorithms. We propose a new quantum 
 computer paradigm that exploits the wonderful scaling achievements of main
 stream integrated circuits (IC) technology which underpins personal comput
 ers and mobile phones. Just like with a small IC chip\, where a single nan
 ometer-sized CMOS transistor can be reliably replicated millions of times 
 to build a digital processor\, we propose a new structure of a qubit reali
 zed as a CMOS-compatible charge-based quantum dot that can be reliably rep
 licated thousands of times to construct a quantum processor. Combined with
  an on-chip CMOS controller\, it will realize a useful quantum computer wh
 ich can operate at a much higher temperature of 4 kelvin.\n\nSpekaer&#39;s Bio
 : R. Bogdan Staszewski received his PhD from University of Texas at Dallas
 \, USA in 2002. He joined Texas Instruments in Dallas\, Texas in 1995. In 
 1999 he co-started a Digital RF Processor (DRP) group in TI with a mission
  to invent new digitally intensive approaches to traditional RF functions.
  Dr. Staszewski served as a CTO of the DRP group between 2007 and 2009. In
  July 2009 he joined Delft University of Technology in the Netherlands. Si
 nce Sept. 2014 he has been a Full Professor at University College Dublin (
 UCD) in Ireland. He has co-authored over 150 journal and 200 conference pu
 blications\, and holds over 200 issued US patents. His research interests 
 include nanoscale CMOS architectures and circuits for frequency synthesize
 rs\, transmitters and receivers\, as well as quantum computers. He is a co
 -founder of a startup company Equal1 Labs aiming at building the first pra
 ctical CMOS quantum computer. He is an IEEE Fellow and a recipient of IEEE
  Circuits and Systems Industrial Pioneer Award.\n\nVirtual: https://events
 .vtools.ieee.org/m/311006
LOCATION:Virtual: https://events.vtools.ieee.org/m/311006
ORGANIZER:kasinski@agh.edu.pl
SEQUENCE:1
SUMMARY:Quantum Computing in Nanoscale CMOS - Bogdan Staszewski
URL;VALUE=URI:https://events.vtools.ieee.org/m/311006
X-ALT-DESC:Description: &lt;br /&gt;&lt;div&gt;&lt;strong&gt;Abstract:&amp;nbsp\;&lt;/strong&gt;Quantum
  computing is a new paradigm that exploits fundamental principles of quant
 um mechanics\, such as superposition and entanglement\, to tackle problems
  in mathematics\, chemistry and material science that are well beyond the 
 reach of supercomputers. Despite the intensive worldwide race to build a u
 seful quantum computer\, it is projected to take decades before reaching t
 he state of useful quantum supremacy. The main challenge is that qubits op
 erate at the atomic level\, thus are extremely fragile\, and difficult to 
 control and read out. The current state-of-art implements a few dozen magn
 etic-spin based qubits in a highly specialized technology and cools them d
 own to a few tens of millikelvin. The high cost of cryogenic cooling preve
 nts its widespread use. A companion classical electronic controller\, need
 ed to control and read out the qubits\, is mostly realized with room-tempe
 rature laboratory instrumentation. This makes it bulky and nearly impossib
 le to scale up to the thousands or millions of qubits needed for practical
  quantum algorithms. We propose a new quantum computer paradigm that explo
 its the wonderful scaling achievements of mainstream integrated circuits (
 IC) technology which underpins personal computers and mobile phones. Just 
 like with a small IC chip\, where a single nanometer-sized CMOS transistor
  can be reliably replicated millions of times to build a digital processor
 \, we propose a new structure of a qubit realized as a CMOS-compatible cha
 rge-based quantum dot that can be reliably replicated thousands of times t
 o construct a quantum processor. Combined with an on-chip CMOS controller\
 , it will realize a useful quantum computer which can operate at a much hi
 gher temperature of 4 kelvin.&lt;/div&gt;\n&lt;div&gt;\n&lt;div class=&quot;ui-flex bm dg df c
 s ct cu cv dh cw&quot;&gt;\n&lt;div class=&quot;ui-flex bm bp di dj db dc cw dk dl dm&quot; dat
 a-tid=&quot;registration-page-view-mode-info-wrapper&quot;&gt;\n&lt;div class=&quot;ui-flex bm 
 bp dq dr ds dt du&quot;&gt;\n&lt;div class=&quot;ui-flex bm&quot; data-tid=&quot;speaker-info-0&quot;&gt;\n&lt;
 div class=&quot;ui-flex bm bp&quot;&gt;&amp;nbsp\;&lt;/div&gt;\n&lt;div class=&quot;ui-flex bm bp&quot;&gt;&lt;span 
 class=&quot;ui-text eo ep ei ej eq&quot; dir=&quot;auto&quot;&gt;&lt;strong&gt;Spekaer&#39;s Bio: &lt;/strong&gt;
 R. Bogdan Staszewski received his PhD from University of Texas at Dallas\,
  USA in 2002. He joined Texas Instruments in Dallas\, Texas in 1995. In 19
 99 he co-started a Digital RF Processor (DRP) group in TI with a mission t
 o invent new digitally intensive approaches to traditional RF functions. D
 r. Staszewski served as a CTO of the DRP group between 2007 and 2009. In J
 uly 2009 he joined Delft University of Technology in the Netherlands. Sinc
 e Sept. 2014 he has been a Full Professor at University College Dublin (UC
 D) in Ireland. He has co-authored over 150 journal and 200 conference publ
 ications\, and holds over 200 issued US patents. His research interests in
 clude nanoscale CMOS architectures and circuits for frequency synthesizers
 \, transmitters and receivers\, as well as quantum computers. He is a co-f
 ounder of a startup company Equal1 Labs aiming at building the first pract
 ical CMOS quantum computer. He is an IEEE Fellow and a recipient of IEEE C
 ircuits and Systems Industrial Pioneer Award.&lt;/span&gt;&lt;/div&gt;\n&lt;/div&gt;\n&lt;/div&gt;
 \n&lt;/div&gt;\n&lt;/div&gt;\n&lt;/div&gt;\n&lt;div&gt;&amp;nbsp\;&lt;/div&gt;
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