Read Computing with Quantum Cats Online
Authors: John Gribbin
intuition,
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ion trap,
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,
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,
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,
252
â
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ions,
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Jehle, Herbert,
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Josephson: devices,
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,
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; effect,
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,
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; junctions,
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,
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,
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Ketchen, Mark,
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King's College, Cambridge,
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,
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,
50
Knill, Emanuel,
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Kürschák, Joseph,
55
Laflamme, Raymond,
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Lagrangian function,
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Lerner, Lawrence,
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light: direction of travel,
114
â
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; as wave,
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9
;
see also
photons
linear optical computing,
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Lloyd, Seth,
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Los Alamos,
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,
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,
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,
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4
,
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,
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Lüders, Gerhard,
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Lyttleton, Raymond,
22
McCarthy, John,
88
McCarthy, Senator Joseph,
148
Mach-Zehnder interferometer,
194
,
195
MacPhail, Malcolm,
24
Madhava of Sangamagrama,
13
magnetic tape and discs,
90
magnetism,
250
“majority voting” system,
83
â
4
Manchester University Mark I computer,
49
Mandl, Franz,
154
Manhattan Project,
61
â
5
,
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,
146
,
148
Many Worlds Interpretation (MWI): Bell's work,
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,
174
,
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; Deutsch's work,
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â
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; Everett's work,
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,
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,
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,
191
â
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; Schrödinger's contribution,
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; wave function,
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Maryland, University of,
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,
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Maxwell, James Clerk,
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,
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measurement problem,
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â
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,
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,
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,
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Melbourne, University of,
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,
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memory: computer,
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,
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,
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,
79
â
80
; quantum computer,
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,
246
; RAM,
49
,
73
; quantum unit,
192
; solid state devices,
90
; storage,
93
Merkle, Ralph,
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Michigan, University of,
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,
256
Mind-Matter Unification Project,
231
mirrors, half-silvered,
193
â
6
,
198
,
201
,
255
MIT: Feynman's career,
99
,
100
â
2
,
115
,
132
,
178
; Fredkin's career,
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,
131
; Haroche's career,
260
; public key system,
204
; Shannon's career,
125
; Shimony's career,
162
Moore, Gordon,
90
Moore School, University of Maryland,
69
,
74
â
5
,
78
,
79
,
80
,
81
multiplexing,
84
Multiverse,
4
,
196
,
197
,
199
â
201
,
208
,
223
musical notes, computer programming,
50
Nagasaki bomb,
63
nanotechnology,
94
National Defense Research Council (NDRC),
61
National Institute of Standards and Technology (NIST),
220
â
1
,
252
National Physical Laboratory (NPL),
46
,
48
,
50
Neddermeyer, Seth,
62
Neumann, Michael,
54
New South Wales, University of,
245
nitrogen-vacancy (N-V) centers,
248
â
9
NMR (nuclear magnetic resonance),
224
,
227
,
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,
249
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,
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,
269
â
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no-cloning theorem,
222
Nobel Prize: Anderson,
232
â
3
; Bell's nomination,
174
; de Broglie,
136
; Dehmelt,
218
; Einstein,
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; Feynman,
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,
113
,
115
,
119
; Haroche,
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; Josephson,
230
â
2
; Leggett,
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,
238
; Townes,
166
; Wineland,
252
Noether, Emmy,
140
non-locality: Aspect's work,
173
; author's view,
189
; Bell's work,
156
,
159
â
60
; de Broglie's work,
145
; experiment with two holes,
109
â
10
,
122
; feature of the Universe,
173
; Schrödinger's cat,
122
NP-complete problems,
212
â
13
,
214
O'Brien, Jeremy,
263
Official Secrets Act,
31
Omni
,
157
Onnes, Kamerlingh,
232
optical cooling,
217
Pan Jianwei,
259
parallel worlds,
187
â
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,
193
,
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,
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,
200
Paris-South, University of,
171
path integral approach,
103
,
111
â
12
,
113
,
119
Paul, Wolfgang,
219
Penning, Frans Michel,
218
Penrose, Oliver,
129
Phillips, James,
233
photolithography,
219
photons: Aspect's work,
171
â
2
,
173
; CHSH paper,
166
; Clauser's work,
169
; de Broglie's work,
136
; detection of,
179
; digitization,
176
â
7
; discord,
269
; energy of,
177
; entanglement,
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,
256
â
7
,
259
; EPR experiment,
202
; experiment with two holes,
108
â
9
; Feynman's work,
118
; gamma rays,
163
; Horne's work,
164
; ion traps,
254
â
5
; Kocher and Commins's
work,
164
; Mach-Zehnder interferometer,
194
â
6
; manipulation,
1
,
93
,
262
; polarization of,
166
,
167
,
168
â
9
,
171
â
2
; quantum computing,
93
; quantum dots,
227
; quantum photonics,
262
â
6
; spin state,
249
; SQUIDs,
240
â
1
; in superposition,
261
â
2
; teleportation,
256
â
9
,
263
; trapped,
260
â
1
Physical Review Letters
,
167
Physics
,
161
Physics Letters
,
234
Physics Today
,
233
Pilot Ace,
48
pilot wave,
137
â
8
,
142
,
148
,
149
,
154
Pipkin, Frank,
165
Planck, Max,
177
Planck length,
177
Planck's constant,
177
Princeton Institute for Advanced Study (PIAS): computer development,
83
; Einstein's career,
58
â
9
,
143
; foundation,
57
â
8
,
68
; Turing's career,
24
; von Neumann's career,
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,
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,
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,
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Princeton University: Bohm's career,
146
,
148
â
9
; Everett's career,
185
,
192
; Feynman's career,
102
â
3
,
116
; Office of Population Research,
60
; Proctor Fellowships,
21
â
2
; quantum dots,
242
,
245
; Shimony's career,
162
; Turing's career,
18
,
21
â
4
,
34
; Veblen's career,
68
; von Neumann's career,
56
â
7
,
79
,
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probability: Copenhagen Interpretation,
106
â
7
,
139
; EPR paper on,
144
; experiment with half-silvered mirrors,
195
,
198
,
201
; experiment with two holes,
110
â
12
,
198
,
201
; Feynman on,
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,
132
; in fungible universes,
201
; in parallel universes,
200
; quantum computation,
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,
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,
241
,
262
â
3
; Schrödinger on,
188
; von Neumann on,
85
Pryce, Maurice,
15
quantum computation: Bell's inequality,
133
; Bell's theorem,
174
; CNOT gate,
215
,
216
â
17
,
220
â
1
,
262
; codebreaking,
203
; Deutsch's work,
175
,
190
; entanglement,
138
,
174
; error correction,
223
; gateway to,
122
â
8
; hidden variables theory,
138
; limits of,
210
â
14
; manipulating quantum entities in two states at the same time,
1
; Multiverse,
200
; NMR,
249
â
52
; problems,
222
; QIP,
262
; quantum reality,
121
â
2
quantum computers: already built,
223
â
5
,
267
â
8
; chess-playing,
211
; codebreaking,
1
,
205
â
6
,
209
,
213
,
266
; computing power,
4
,
214
; Deutsch's work,
192
â
3
,
196
â
7
,
200
â
2
,
206
,
208
; development of,
173
; Feynman's work,
133
â
4
; future of,
225
,
226
,
241
,
245
,
252
â
3
; Grover's algorithm,
209
â
10
,
211
; key criteria,
227
â
30
,
240
; limitations,
203
,
210
â
14
; logic gates,
214
â
16
,
226
; Multiverse and,
200
â
2
,
208
; non-locality,
110
; nuclear spin,
246
,
247
; problems in building,
201
,
202
,
212
,
214
; quantum dots,
242
â
3
; quantum photonics,
263
â
6
; quantum switches,
3
,
216
; qubits,
3
â
4
,
202
,
222
â
3
,
226
; RSA algorithm,
205
â
6
; Shor's algorithm,
206
â
8
,
223
; simulation,
132
,
178
,
179
â
80
,
196
â
7
,
210
; size,
253
; SQUIDs,
230
,
239
â
40
; teleportation,
258
,
263
; trapped ion technique,
219
â
20
,
253
â
4
,
263
; uses of,
1
â
2