52-Te-125

 52-TE-125 JNDC       EVAL-MAR90 JNDC FP NUCLEAR DATA W.G.        
                      DIST-SEP90 REV2-NOV93                       
----JENDL-3.2         MATERIAL 5240                               
-----INCIDENT NEUTRON DATA                                        
------ENDF-6 FORMAT                                               
HISTORY                                                           
90-03 NEW EVALUATION FOR JENDL-3 WAS COMPLETED BY JNDC FPND       
      W.G./1/                                                     
93-11 JENDL-3.2 WAS MADE BY JNDC FPND W.G.                        
                                                                  
     *****   MODIFIED PARTS FOR JENDL-3.2   ********************  
      (2,151)       RESOLVED RESONACE PARAMETERS                  
     ***********************************************************  
                                                                  
                                                                  
MF = 1  GENERAL INFORMATION                                       
  MT=451 COMMENTS AND DICTIONARY                                  
                                                                  
MF = 2  RESONANCE PARAMETERS                                      
  MT=151 RESOLVED AND UNRESOLVED RESONANCE PARAMETERS             
  RESOLVED RESONANCE REGION (MLBW FORMULA) : BELOW 3 KEV          
       RESONANCE PARAMETERS IN THE ENERGY REGION BELOW 2.7 KEV    
    WERE TAKEN FROM JENDL-3.1 WITH SLIGHT MODIFICATION AND THOSE  
    ABOVE 2.7 KEV WERE NEWLY EVALUATED FOR JENDL-3.2.             
       FOR JENDL-3.1, RESONANCE PARAMETERS WERE BASED ON          
    MUGHABGHAB ET AL./2/ TOTAL SPIN J OF SOME RESONANCES WAS TEN- 
    TATIVELY ESTIMATED WITH A RANDOM NUMBER METHOD.  NEUTRON      
    ORBITAL ANGULAR MOMENTUM L WAS ESTIMATED WITH A METHOD OF     
    BOLLINGER AND THOMAS/3/.  AVERAGED RADIATION WIDTH WAS DEDUCED
    TO BE 150 MEV, AND APPLIED TO THE LEVELS WHOSE RADIATION WIDTH
    WAS UNKNOWN.  A NEGATIVE RESONANCE WAS ADDED AND ITS PARAME-  
    TERS WERE ADJUSTED TOGETHER WITH SCATTERING RADIUS (6.0 FM) SO
    AS TO REPRODUCE THE THERMAL CAPTURE AND SCATTERING CROSS      
    SECTIONS GIVEN BY MUGHABGHAB ET AL.                           
      FOR JENDL-3.2, NEUTRON AND RADIATION WIDTH WERE DETERMINED  
    FROM THE NEUTRON WIDTHS MEASURED BY TELLIER ET AL./4/ AND THE 
    CAPTURE AREA DATA BY MACKLIN AND WINTERS/5/ IN THE ENERGY     
    RANGE ABOVE 2.7 KEV.  THE AVERAGE RADIATION WIDTH OF 0.1075 EV
    GIVEN BY MACKLIN AND WINTERS WAS APPLIED TO THE LEVELS WHOSE  
    RADIATION WIDTH HAD NOT BEEN DETERMINED FROM THE EXPERIMENTS. 
    THE AVERAGE VALUE OF 0.15 EV OF JENDL-3.1 WAS REPLACED WITH   
    0.1075 EV.                                                    
                                                                  
  UNRESOLVED RESONANCE REGION : 3 KEV - 100 KEV                   
    THE NEUTRON STRENGTH FUNCTION S0 WAS BASED ON THE COMPILATION 
    OF MUGHABGHAB ET AL., AND S1 AND S2 WERE CALCULATED WITH      
    OPTICAL MODEL CODE CASTHY/6/.  THE OBSERVED LEVEL SPACING WAS 
    DETERMINED TO REPRODUCE THE CAPTURE CROSS SECTION CALCULATED  
    WITH CASTHY.  THE EFFECTIVE SCATTERING RADIUS WAS OBTAINED    
    FROM FITTING TO THE CALCULATED TOTAL CROSS SECTION AT 100 KEV.
    THE RADIATION WIDTH GG WAS BASED ON THE COMPILATION OF        
    MUGHABGHAB ET AL.                                             
                                                                  
  TYPICAL VALUES OF THE PARAMETERS AT 70 KEV:                     
    S0 = 0.480E-4, S1 = 1.700E-4, S2 = 1.000E-4, SG = 33.9E-4,    
    GG = 0.157 EV, R  = 5.761 FM.                                 
                                                                  
  CALCULATED 2200-M/S CROSS SECTIONS AND RES. INTEGRALS (BARNS)   
                     2200 M/S               RES. INTEG.           
      TOTAL           4.940                    -                  
      ELASTIC         3.420                    -                  
      CAPTURE         1.520                    21.9               
                                                                  
MF = 3  NEUTRON CROSS SECTIONS                                    
  BELOW 100 KEV, RESONANCE PARAMETERS WERE GIVEN.                 
  ABOVE 100 KEV, THE SPHERICAL OPTICAL AND STATISTICAL MODEL      
  CALCULATION WAS PERFORMED WITH CASTHY, BY TAKING ACCOUNT OF     
  COMPETING REACTIONS, OF WHICH CROSS SECTIONS WERE CALCULATED    
  WITH PEGASUS/7/ STANDING ON A PREEQUILIBRIUM AND MULTI-STEP     
  EVAPORATION MODEL.  THE OMP'S FOR NEUTRON GIVEN IN TABLE 1 WERE 
  DETERMINED TO REPRODUCE A SYSTEMATIC TREND OF THE TOTAL CROSS   
  SECTION BY CHANGING R0 AND RSO OF IIJIMA-KAWAI POTENTIAL/8/.    
  THE OMP'S FOR CHARGED PARTICLES ARE AS FOLLOWS:                 
     PROTON   = PEREY/9/                                          
     ALPHA    = HUIZENGA AND IGO/10/                              
     DEUTERON = LOHR AND HAEBERLI/11/                             
     HELIUM-3 AND TRITON = BECCHETTI AND GREENLEES/12/            
  PARAMETERS FOR THE COMPOSITE LEVEL DENSITY FORMULA OF GILBERT   
  AND CAMERON/13/ WERE EVALUATED BY IIJIMA ET AL./14/  MORE       
  EXTENSIVE DETERMINATION AND MODIFICATION WERE MADE IN THE       
  PRESENT WORK.  TABLE 2 SHOWS THE LEVEL DENSITY PARAMETERS USED  
  IN THE PRESENT CALCULATION.  ENERGY DEPENDENCE OF SPIN CUT-OFF  
  PARAMETER IN THE ENERGY RANGE BELOW E-JOINT IS DUE TO GRUPPELAAR
  /15/.                                                           
                                                                  
  MT = 1  TOTAL                                                   
    SPHERICAL OPTICAL MODEL CALCULATION WAS ADOPTED.              
                                                                  
  MT = 2  ELASTIC SCATTERING                                      
    CALCULATED AS (TOTAL - SUM OF PARTIAL CROSS SECTIONS).        
                                                                  
  MT = 4, 51 - 91  INELASTIC SCATTERING                           
    SPHERICAL OPTICAL AND STATISTICAL MODEL CALCULATION WAS       
    ADOPTED. THE LEVEL SCHEME WAS BASED ON EVALUATED NUCLEAR      
    STRUCTURE DATA FILE (1987 VERSION)/16/ AND NUCLEAR DATA       
    SHEETS/17/.                                                   
                                                                  
           NO.      ENERGY(MEV)    SPIN-PARITY                    
           GR.       0.0            1/2 +                         
            1        0.0355         3/2 +                         
            2        0.1448        11/2 -                         
            3        0.3211         9/2 -                         
            4        0.4435         3/2 +                         
            5        0.4634         5/2 +                         
            6        0.5252         7/2 -                         
            7        0.6360         7/2 +                         
            8        0.6421         7/2 +                         
            9        0.6714         5/2 +                         
           10        0.7293         3/2 +                         
           11        0.8040        15/2 -                         
           12        0.8408        15/2 -                         
           13        1.0170        11/2 -                         
           14        1.0550         5/2 -                         
           15        1.1330         3/2 +                         
           16        1.1917         9/2 +                         
           17        1.2650         3/2 +                         
      LEVELS ABOVE 1.31 MEV WERE ASSUMED TO BE OVERLAPPING.       
                                                                  
  MT = 102  CAPTURE                                               
    SPHERICAL OPTICAL AND STATISTICAL MODEL CALCULATION WITH      
    CASTHY WAS ADOPTED.  DIRECT AND SEMI-DIRECT CAPTURE CROSS     
    SECTIONS WERE ESTIMATED ACCORDING TO THE PROCEDURE OF BENZI   
    AND REFFO/18/ AND NORMALIZED TO 1 MILLI-BARN AT 14 MEV.       
                                                                  
    THE GAMMA-RAY STRENGTH FUNCTION (3.28E-03) WAS ADJUSTED TO    
    REPRODUCE THE CAPTURE CROSS SECTION OF 600 MILLI-BARNS AT 20  
    KEV MEASURED BY BERGMAN AND ROMANOV/19/                       
                                                                  
  MT = 16  (N,2N) CROSS SECTION                                   
  MT = 17  (N,3N) CROSS SECTION                                   
  MT = 22  (N,N'A) CROSS SECTION                                  
  MT = 28  (N,N'P) CROSS SECTION                                  
  MT = 32  (N,N'D) CROSS SECTION                                  
  MT =103  (N,P) CROSS SECTION                                    
  MT =104  (N,D) CROSS SECTION                                    
  MT =105  (N,T) CROSS SECTION                                    
  MT =107  (N,ALPHA) CROSS SECTION                                
    THESE REACTION CROSS SECTIONS WERE CALCULATED WITH THE        
    PREEQUILIBRIUM AND MULTI-STEP EVAPORATION MODEL CODE PEGASUS. 
                                                                  
    THE KALBACH'S CONSTANT K (= 179.3) WAS ESTIMATED BY THE       
    FORMULA DERIVED FROM KIKUCHI-KAWAI'S FORMALISM/20/ AND LEVEL  
    DENSITY PARAMETERS.                                           
                                                                  
    FINALLY, THE (N,P) AND (N,ALPHA) CROSS SECTIONS WERE          
    NORMALIZED TO THE FOLLOWING VALUES AT 14.5 MEV:               
      (N,P)          5.70  MB (SYSTEMATICS OF FORREST/21/)        
      (N,ALPHA)      2.86  MB (SYSTEMATICS OF FORREST)            
                                                                  
  MT = 251  MU-BAR                                                
    CALCULATED WITH CASTHY.                                       
                                                                  
MF = 4  ANGULAR DISTRIBUTIONS OF SECONDARY NEUTRONS               
  LEGENDRE POLYNOMIAL COEFFICIENTS FOR ANGULAR DISTRIBUTIONS ARE  
  GIVEN IN THE CENTER-OF-MASS SYSTEM FOR MT=2 AND DISCRETE INELAS-
  TIC LEVELS, AND IN THE LABORATORY SYSTEM FOR MT=91.  THEY WERE  
  CALCULATED WITH CASTHY.  FOR OTHER REACTIONS, ISOTROPIC DISTRI- 
  BUTIONS IN THE LABORATORY SYSTEM WERE ASSUMED.                  
                                                                  
MF = 5  ENERGY DISTRIBUTIONS OF SECONDARY NEUTRONS                
  ENERGY DISTRIBUTIONS OF SECONDARY NEUTRONS WERE CALCULATED WITH 
  PEGASUS FOR INELASTIC SCATTERING TO OVERLAPPING LEVELS AND FOR  
  OTHER NEUTRON EMITTING REACTIONS.                               
                                                                  
TABLE 1  NEUTRON OPTICAL POTENTIAL PARAMETERS                     
                                                                  
                DEPTH (MEV)       RADIUS(FM)    DIFFUSENESS(FM)   
         ----------------------   ------------  ---------------   
        V  = 45.97-0.199E         R0 = 6.481    A0 = 0.62         
        WS = 6.502                RS = 6.926    AS = 0.35         
        VSO= 7.0                  RSO= 6.49     ASO= 0.62         
  THE FORM OF SURFACE ABSORPTION PART IS DER. WOODS-SAXON TYPE.   
                                                                  
TABLE 2  LEVEL DENSITY PARAMETERS                                 
                                                                  
 NUCLIDE       A(1/MEV)  T(MEV)    C(1/MEV)  EX(MEV)   PAIRING    
 ---------------------------------------------------------------  
 50-SN-121     1.630E+01 6.100E-01 2.010E+00 5.217E+00 1.190E+00  
 50-SN-122     1.434E+01 7.060E-01 3.423E-01 7.416E+00 2.620E+00  
 50-SN-123     1.509E+01 6.870E-01 3.062E+00 6.032E+00 1.190E+00  
 50-SN-124     1.601E+01 6.160E-01 3.224E-01 6.294E+00 2.280E+00  
                                                                  
 51-SB-122     1.772E+01 5.500E-01 1.346E+01 3.517E+00 0.0        
 51-SB-123     1.585E+01 6.213E-01 1.285E+00 5.469E+00 1.430E+00  
 51-SB-124     1.696E+01 5.600E-01 1.090E+01 3.433E+00 0.0        
 51-SB-125     1.700E+01 5.120E-01 7.883E-01 3.792E+00 1.090E+00  
                                                                  
 52-TE-123     1.874E+01 5.850E-01 4.619E+00 5.627E+00 1.140E+00  
 52-TE-124     1.784E+01 6.740E-01 1.452E+00 8.479E+00 2.570E+00  
 52-TE-125     1.992E+01 5.590E-01 5.035E+00 5.527E+00 1.140E+00  
 52-TE-126     1.706E+01 6.100E-01 5.154E-01 6.554E+00 2.230E+00  
 ---------------------------------------------------------------  
  SYST:  * = LDP'S WERE DETERMINED FROM SYSTEMATICS.              
                                                                  
 SPIN CUTOFF PARAMETERS WERE CALCULATED AS 0.146*SQRT(A)*A**(2/3).
 IN THE CASTHY CALCULATION, SPIN CUTOFF FACTORS AT 0 MEV WERE     
 ASSUMED TO BE 10.14 FOR TE-125 AND 7.509 FOR TE-126.             
                                                                  
REFERENCES                                                        
 1) KAWAI, M. ET AL.: J. NUCL. SCI. TECHNOL., 29, 195 (1992).     
 2) MUGHABGHAB, S.F. ET AL.: "NEUTRON CROSS SECTIONS, VOL. I,     
    PART A", ACADEMIC PRESS (1981).                               
 3) BOLLINGER, L.M. AND THOMAS, G.E.: PHYS. REV., 171,1293(1968). 
 4) TELLIER, H. AND NEWSTEDD, C.M.: PROC. 3RD INT. CONF. ON       
    NEUTRON CROSS SECTIONS AND TECHNOL., KOXVILL, MARCH 1971,     
    P.680 (1971).                                                 
 5) MACKLIN, R.L. AND WINTERS, R.R.: ORNL-6561 (1988).            
 6) IGARASI, S. AND FUKAHORI, T.: JAERI 1321 (1991).              
 7) IIJIMA, S. ET AL.: JAERI-M 87-025, P. 337 (1987).             
 8) IIJIMA, S. AND KAWAI, M.: J. NUCL. SCI. TECHNOL., 20, 77      
    (1983).                                                       
 9) PEREY, F.G: PHYS. REV. 131, 745 (1963).                       
10) HUIZENGA, J.R. AND IGO, G.: NUCL. PHYS. 29, 462 (1962).       
11) LOHR, J.M. AND HAEBERLI, W.: NUCL. PHYS. A232, 381 (1974).    
12) BECCHETTI, F.D., JR. AND GREENLEES, G.W.: POLARIZATION        
    PHENOMENA IN NUCLEAR REACTIONS ((EDS) H.H. BARSHALL AND       
    W. HAEBERLI), P. 682, THE UNIVERSITY OF WISCONSIN PRESS.      
    (1971).                                                       
13) GILBERT, A. AND CAMERON, A.G.W.: CAN. J. PHYS., 43, 1446      
    (1965).                                                       
14) IIJIMA, S., ET AL.: J. NUCL. SCI. TECHNOL. 21, 10 (1984).     
15) GRUPPELAAR, H.: ECN-13 (1977).                                
16) ENSDF: EVALUATED NUCLEAR STRUCTURE DATA FILE (JUNE 1987).     
17) NUCLEAR DATA SHEETS, 32, 497 (1981).                          
18) BENZI, V. AND REFFO, G.: CCDN-NW/10 (1969).                   
19) BERGMAN, A.A. AND ROMANOV, S.A.: YADERNAYA FIZIKA, 20, 252    
   (1974).                                                        
20) KIKUCHI, K. AND KAWAI, M.: "NUCLEAR MATTER AND NUCLEAR        
    REACTIONS", NORTH HOLLAND (1968).                             
21) FORREST, R.A.: AERE-R 12419 (1986).