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Motivation & History Rutherford Experiment one of 1st experiments with โacceleratedโ particles decay of 214๐๐ โ 4๐ป๐ 2+ @ 7.7 ๐๐๐ (6.4% ๐๐ ๐) โ 197 ๐ด๐ข ๐ป๐ ๏ฝ if Au-nucleus pointlike: ๐ด๐ข ๐๐๐๐ = 30 โ 10โ15 ๐ = 30 ๐๐ ๐๐๐๐ ๏ฝ Au-nucleus extended: ๏ฝ 3 experiment ๏พ Rutherford formular at โ ๐ = 7.5 ๐๐ โ 1.3 โ โ197 โ result: nucleus almost pointlike, details not โvisibleโ โ atomic physics opens as new research field beyond Rutherford โobserveโ with ฮป โค RN ๐ small ฮป โ high energy ๐ โ ๐๐ โ = โโ๐ ๐ธ E ฮป [fm] 100 MeV 12 1000 ๐๐๐ = 1 ๐บ๐๐ 1.2 1000 ๐บ๐๐ = 1 ๐๐๐ 0.0012 ๐ด๐ข for details nuclear physics , ๐ธ โ๐โ๐ Accelerator needed for physics of (atoms), nuclei, elementary particles, โฆ ๏ด Motivation & History Most simple, linear accelerator electrostatic, dc voltage heater - e -emission dc beam Ring shaped accelerator bending magnet ac voltage, beam from bunches, (bunched beam) โ๐ = ~๐ sin ๐๐ก 1 ๐ f and B-field synchronized bunches from electrostatic injector curvature โrips offโ ๐ธโ - field ๐โ โ (synchroton) radiation ๐ธ ๏ดโ๐ธ~ ๐ 2 limits achievable e--energy ๐พ4 ๏ดradiation is new tool for: ๐ ๐ธ โ โ๐ธ - material science - nuclear physics - ... ๏ด Motivation & History Dedicated synchroton radiation machines goal is radiation, NOT fast electrons Neutron sources n protons @ MeV โฆ GeV n target n Colliders E lost for acceleration of centre of mass (c.o.m.) ๐1 โ ๐ฃ1 ๐1 โ ๐ฃ2 = 0 โ lost for physics experiments ๐ธ๐๐ = โ2๐๐ 2 โ ๐ธ1 ๐, ๐ธ ๏ด ๐, ๐ธ ๐ธ๐๐ = 2๐ธ Motivation & History Linear colliders Circular colliders (๐ โ โ ๐ + ) (๐ด๐ข โ ๐ด๐ข, ๐ โ ๐, ๐ โ ๐) ๐โ collisions ๐+ building accelerators: challanges in technology: magnetic fields: strong, homogeneous in time and space electric fields: creation (rf-sources), field breakdown mitigation beam handling: low losses, small beams (i.e. repelling forces!) good ๐ โ -beam โ good photon beam, brilliance! diagnostic: beam properties (# particles, E, size, divergence) machine protection E(LHC) = 780 MJ improved beam controls: ๏ฝ material manipulation (holes, implantation) ๏ฝ medicine, food control, โฆ ๏ด Motivation & History Greinacher Circuit ๏ฝ grid voltage ๐0 ๏ฝ create dc-voltage ๐ โซ ๐0 โ ๐ถ1 โก ๐ถ3 โฃ ๐๐ถ1 ๐(๐ก) ๐ท1 ๐ท2 ๐ท3 ๐ถ2 โข ๐(๐ก) simplified model ๐ 1 3 ๐ก 2๐ (4๐) 5 โ๐ ๐0 2๐0 2๐0 ๏ด 4๐0 4๐0 Motivation & History t ๐ก <2 2๐ (4๐) simple model โ @ โ ๐0 โก @ 0๐ ๐(๐ถ1 ) = โก โ โ = 0 + ๐0 2โค ๐ก <4 2๐ (4๐) โ @ + ๐0 ๐(๐ถ1 ) = ๐0 โ โก @ 2๐0 w.r.t. ground โก cannot "discharge" because its ๐ฅ๐ w.r.t. ground closes ๐ท1 4โค ๐ก <6 2๐ (4๐) โฎ โ @ โ ๐0 ๐(๐ถ1 ) = ๐0 โ โก @ 0๐ again ๐ท1 remains always closed โ ๐ถ1 keeps always ๐0 , โก ๐0 higher than โ ๐ถ2 charged through ๐ถ1 to 2๐0 t with โก @ 2๐0 โข @ 2๐0 ๐(๐ถ3 ) = 2๐0 โฃ @ 4๐0 = 2๐0 [โก โ โ ] ] + 2๐0 [โฃ โ โก] ๐(๐ถ2 ) = 2๐0 , since ๐ท2 forbids discharge t with โก @ 0๐ โข @ 2๐0 โฃ @ 2๐0 ๏ด Motivation & History Real process ๏ฝ charging of ๐ถ๐ in steps ๏ฝ charging of ๐ถ2 will discharge ๐ถ1 ๏ฝ all ๐ถ๐ recharged by grid Dc-Accelerator of Cockcroft & Walton source ๐ธโ acceleration tubes collector, target ๏ด Motivation & History ๏ฝ ๐๐๐๐ฅ = 4 ๐๐ achieved ๏ฝ ๐ผ๐๐๐ฅ = 100 ๐๐ด (protons) (โ ๐๐ pulses) ๏ฝ 7 ๐ฟ๐ + ๐ โ 2 4๐ป๐ observed Van-der-Graaf Generator ๐ธ=0 ๐ผ โ ๐๐ด, ๐๐ โค 16 MW ๏ด Motivation & History Tandem negative ions foil target positive ions use voltage twice! First terms Energy per nucleon ๐ธ๐ข = ๐ก๐๐ก๐๐ ๐๐๐.๐๐๐ ๐๐๐๐๐๐ฆ ๐๐๐ ๐๐๐ ๐ ๐๐ข๐๐๐๐ ๐ด ๐+ ๐ ๐ ๐ธ๐ข = ๐ด โ ๐ โ ๐ [๐๐๐โ๐ข] Eu defines velocity ๐พ =1+ = ๐ธ๐ข ๐ธ๐ข [๐๐๐ฃ โ๐ข] =1+ ๐๐ข 939.487 ๐๐๐ฃโ๐ข 1 โ1โ๐ฝ2 โ ๐ฝ = โ1 โ 1โ๐พ 2 ๐ฝ โ ๐พ = โ๐พ 2 โ 1 ๏ด Motivation & History Beam rigidity (Bฯ) ๐ฃ ๐ต๐ โถ= magn.field โ curvature radius AXq+ ๐โ๐โ๐ฃโ๐ต = R ๐ดโ๐๐ข โ๐พโ๐ฃ 2 ๐ ๐ต โ ๐ โถ= ๐ต๐ = B = ๐ต๐ = 3.1071 ๐๐ โ ๐ โ ๐ฝ โ ๐พ electrons: ๐ต๐ = 1.705 โ 10โ3 ๐๐ โ ๐ฝ โ ๐พ ๐๐ฝ = ๐พ 3 โ ๐ฝ, ๏ด ๐โ๐ ๐๐๐๐๐๐ก๐ข๐ ๐โ๐๐๐๐ ๐ด ions: ๐๐พ ๐ดโ๐๐ข โ๐พโ๐ฃ ๐๐พ = ๐พ โ ๐ฝ 2 โ ๐๐ ๐ , ๐๐ ๐ = ๐พ ๐๐ธ๐ ๐พ+1 ๐ธ๐ , ๐๐ ๐๐ฝ = ๐ด โ ๐๐ข โ ๐พ 3 โ ๐