Teo TeO2  AgTe CdTe In2Te3 PbTe  ZnTe Sb2Te3 CdZnTe Basic 

XPS Spectra
Tellurium (Te) Compounds
The XPS Spectra section provides raw and processed survey spectra, chemical state spectra, BE values, FWHM values, and overlays of key spectra.
Atom% values from surveys are based on sample, as received, and Scofield cross-sections. Atom% values are corrected for IMFP and PE.
Peak-fits are guides for practical, real-world applications. Peak-fits are not fully optimized or designed to test any theory.


Tellurium Di-oxide  (TeO2 – single crystal)
Survey, Peak-fits, BEs, FWHMs, and Peak Labels


 Periodic Table   → Six (6) BE Tables
Survey Spectrum from TeO2
Freshly exposed bulk, Flood gun is ON, Ag (3d5/2) FWHM = 1.3 eV

 Periodic Table  → Six (6) BE Tables
Te (3d) Spectrum from TeO2 Raw
Fresh exposed bulk, Flood gun is
ON, C (1s) BE = 285.0 eV, Ag FWHM = 0.75 eV
Te (3d) Spectrum from TeO2 Peak-Fit
Freshly exposed bulk, Flood gun is ON, C (1s) BE = 285.0 eV, Ag FWHM = 0.75 eV



 
Te (3d) Spectrum from TeO2 Extended Range
Fresh exposed bulk, Flood gun is ON, C (1s) BE = 285.0 eV, Ag FWHM = 0.75 eV
Te (3d) Spectrum from TeO2 Raw – Vertically Expanded
Freshly exposed bulk, Flood gun is ON, C (1s) BE = 285.0 eV, Ag FWHM = 0.75 eV


 Periodic Table  → Six (6) BE Tables
O (1s) Spectrum from TeO2 Raw
Freshly exposed bulk, Flood gun is ON, C (1s) BE = 285.0 eV, Ag FWHM = 0.75 eV
O (1s) Spectrum from TeO2 Peak-Fit
Freshly exposed bulk, Flood gun is ON, C (1s) BE = 285.0 eV, Ag FWHM = 0.75 eV

 Periodic Table  → Six (6) BE Tables
O (1s) Spectrum from TeO2 Raw – Extended Range
Freshly exposed bulk, Flood gun is ON, C (1s) BE = 285.0 eV, Ag FWHM = 0.75 eV
O (1s) Spectrum from TeO2 Raw – Vertically Expanded
Freshly exposed bulk, Flood gun is ON, C (1s) BE = 285.0 eV, Ag FWHM = 0.75 eV

 Periodic Table  → Six (6) BE Tables
C (1s) Spectrum from TeO2 Raw
Freshly exposed bulk, Flood gun is ON, C (1s) BE = 283.81 eV, Ag FWHM = 0.75 eV
C (1s) Spectrum from TeO2 Peak-Fit
Freshly exposed bulk, Flood gun is ON, C (1s) BE = 285.0 eV, Ag FWHM = 0.75 eV

 Periodic Table  → Six (6) BE Tables
Te (4d) Spectrum from TeO2  Raw
Freshly exposed bulk, Flood gun is ON, C (1s) BE = 285.0 eV, Ag FWHM = 0.75 eV
Te (4d) Spectrum from TeO2 Peak-Fit
Freshly exposed bulk, Flood gun is ON, C (1s) BE = 285.0 eV, Ag FWHM = 0.75 eV


 Periodic Table  → Six (6) BE Tables
Te (4p-4s) Spectrum from TeO2 Raw
Freshly exposed bulk, Flood gun is ON, C (1s) BE = 285.0 eV, Ag FWHM = 0.75 eV
Te (4p-4s) Spectrum from TeO2 Peak-Fit
Freshly exposed bulk, Flood gun is ON, C (1s) BE = 285.0 eV, Ag FWHM = 0.75 eV


 Periodic Table  → Six (6) BE Tables
Te (LMM) Auger Signals from TeO2 Raw
Freshly exposed bulk, Flood gun is ON, C (1s) BE = 285.0 eV, Ag FWHM = 0.75 eV
Valence Band Signals from TeO2 Raw
Freshly exposed bulk, Flood gun is ON, C (1s) BE = 285.0 eV, Ag FWHM = 0.75 eV

 
Overlays
 Periodic Table  → Six (6) BE Tables
Valence Band SpectraOverlay of Teo and TeO2
Freshly exposed bulk, Flood gun is ON, C (1s) BE = 285.0 eV, Ag FWHM = 0.75 eV
Te (3d) SpectraOverlay of Teo and TeO2
Freshly exposed bulk, Flood gun is ON, C (1s) BE = 285.0 eV, Ag FWHM = 0.75 eV


 Periodic Table  → Six (6) BE Tables
Te (3d) Spectra – Overlay of Native Te oxide and Teo
Freshly exposed bulk, Flood gun is ON, C (1s) BE = 285.0 eV, Ag FWHM = 0.75 eV


End-of-spectra

Price to purchase raw data sets:
Raw spectra – VAMAS ASCII format ($6)
Raw spectra – SDP binary format ($5)
SDP v9 – $145 (3 yr license)

 



 

Transmission Function Tests


 

December 2015 – Transmission Function of Thermo K-Alpha Plus

 Periodic Table 
Survey Spectra of Ion Etched Copper (Sc), PEs = 50, 100, 150 and 200 eV

 Periodic Table 
March 2016 – Transmission Function of Thermo K-Alpha Plus 
 
Survey Spectra of Ion Etched Copper (Sc), PEs = 100, 150 and 200 eV

 Periodic Table  
August 2019 – Transmission Function of Thermo K-Alpha Plus
 
Survey Spectra of HOPG (C), PEs = 20, 50, 100 and 200 eV

 Periodic Table  
January 2022 – Transmission Function of Thermo K-Alpha Plus
Survey Spectra of Ion Etched Copper (Sc), PEs = 100, 120, 140, 160, 180 and 200 eV


End-of-Transmission-Function-Tests

 



Six (6) Chemical State Tables of Te (3d5/2) BEs

 

  • The XPS Library Spectra-Base
  • PHI Handbook
  • Thermo-Scientific Website
  • XPSfitting Website
  • Techdb Website
  • NIST Website

 Periodic Table 



 

Notes of Caution when using Published BEs and BE Tables from Insulators and Conductors:

  • Accuracy of Published BEs
    • The accuracy depends on the calibration BEs used to calibrate the energy scale of the instrument.  Cu (2p3/2) BE can vary from 932.2 to 932.8 eV for old publications 
    • Different authors use different BEs for the C (1s) BE of the hydrocarbons found in adventitious carbon that appears on all materials and samples.  From 284.2 to 285.3 eV
    • The accuracy depends on when the authors last checked or adjusted their energy scale to produce the expected calibration BEs
  • Worldwide Differences in Energy Scale Calibrations
    • For various reasons authors still use older energy scale calibrations 
    • Some authors still adjust their energy scale so Cu (2p3/2) appears at 932.2 eV or 932.8 eV because this is what the maker taught them
    • This range causes BEs in the higher BE end to be larger than expected 
    • This variation increases significantly above 600 eV BE
  • Charge Compensation
    • Samples that behave as true insulators normally require the use of a charge neutralizer (electron flood gun with or without Ar+ ions) so that the measured chemical state spectra can be produced without peak-shape distortions or sloping tails on the low BE side of the peak envelop. 
    • Floating all samples (conductive, semi-conductive, and non-conductive) and always using the electron flood gun is considered to produce more reliable BEs and is recommended.
  • Charge Referencing Methods for Insulators
    • Charge referencing is a common method, but it can produce results that are less reliable.
    • When an electron flood gun is used, the BE scale will usually shift to lower BE values by 0.01 to 5.0 eV depending on your voltage setting. Normally, to correct for this flood gun induced shift, the BE of the hydrocarbon C (1s) peak maximum from adventitious carbon is used to correct for the charge induced shift.
    • The hydrocarbon peak is normally the largest peak at the lowest BE. 
    • Depending on your preference or training, the C (1s) BE assigned to this hydrocarbon peak varies from 284.8 to 285.0 eV.  Other BEs can be as low as 284.2 eV or as high as 285.3 eV
    • Native oxides that still show the pure metal can suffer differential charging that causes the C (1s) and the O (1s) and the Metal Oxide BE to be larger
    • When using the electron flood gun, the instrument operator should adjust the voltage and the XY position of the electron flood gun to produce peaks from a strong XPS signal (eg O (1s) or C (1s) having the most narrow FWHM and the lowest experimentally measured BE. 

 Periodic Table 


Table #1

Te (3d5/2) Chemical State BEs from:  “The XPS Library Spectra-base”

C (1s) BE = 285.0 eV for TXL BEs
and C (1s) BE = 284.8 eV for NIST BEs

Element Atomic # Compound As-Measured by TXL or NIST Average BE Largest BE Hydrocarbon C (1s) BE  Source
Te 52 ZnTe (N*2) 571.5 eV 572.9 eV 284.8 eV Avg BE – NIST
Te 52 PbTe (N*2) 572.0 eV 572.2 eV 284.8 eV Avg BE – NIST
Te 52 PbTe 572.3 eV 285.0 eV The XPS Library
Te 52 CdTe (N*10) 572.3 eV 572.9 eV 284.8 eV Avg BE – NIST
Te 52 HgCdTe (N*1) 572.3 eV 284.8 eV Avg BE – NIST
Te 52 Cd-Te 572.4 eV 572.6 eV 285.0 eV The XPS Library
Te 52 Ag-Te 572.5 eV 285.0 eV The XPS Library
Te 52 Cs2.6Te (N*2) 572.5 eV 574.2 eV 284.8 eV Avg BE – NIST
Te 52 Te-Sb 572.5 eV 573.1 eV 285.0 eV The XPS Library
Te 52 Te (N*19) 572.7 eV 572.5 eV 284.8 eV Avg BE – NIST
Te 52 Te – element 572.9 eV 285.0 eV The XPS Library
Te 52 HgTe 573.2 eV 285.0 eV The XPS Library
Te 52 HgCdTe 573.3 eV 285.0 eV The XPS Library
Te 52 TeO2 (N*6) 575.6 eV 576.5 eV 284.8 eV Avg BE – NIST
Te 52 TeI4 (N*1) 575.8 eV 284.8 eV Avg BE – NIST
Te 52 Te-O2 576.6 eV 285.0 eV The XPS Library
Te 52 TeO3 (N*2) 576.6 eV 577.3 eV 284.8 eV Avg BE – NIST
Te 52 TeCl4 (N*1) 576.9 eV 284.8 eV Avg BE – NIST
Te 52 Te-(OH)6 (N*1) 577.1 eV 284.8 eV Avg BE – NIST

Charge Referencing Notes

  • (N*number) identifies the number of NIST BEs that were averaged to produce the BE in the middle column.
  • The XPS Library uses Binding Energy Scale Calibration with Cu (2p3/2) BE = 932.62 eV and Au (3d7/2) BE = 83.98 eV.  BE (eV) Uncertainty Range:  +/- 0.2 eV
  • Charge Referencing of insulators is defined such that the Adventitious Hydrocarbon C (1s) BE (eV) = 285.0 eV.  NIST uses C (1s) BE = 284.8 eV 
  • Note:   Ion etching removes adventitious carbon, implants Ar (+), changes conductivity of surface, and degrades chemistry of various chemical states.
  • Note:  Ion Etching changes BE of C (1s) hydrocarbon peak.
  • TXL – abbreviation for: “The XPS Library” (https://xpslibrary.com).  NIST:  National Institute for Science and Technology (in USA)

 Periodic Table 


Table #2

Te (3d5/2) Chemical State BEs from:  “PHI Handbook”

C (1s) BE = 284.8 eV

 Periodic Table 

Copyright ©:  Ulvac-PHI


Table #3

Te (3d5/2) Chemical State BEs from:  “Thermo-Scientific” Website

C (1s) BE = 284.8 eV

Chemical state Binding energy (eV), Te (3d5/2)
Te metal 573.0
Te oxide 576.3

 Periodic Table 

Copyright ©:  Thermo Scientific 


Table #4

Te (3d5/2) Chemical State BEs from:  “XPSfitting” Website

Chemical State BE Table derived by Averaging BEs in the NIST XPS database of BEs
C (1s) BE = 284.8 eV

 Periodic Table 

Copyright ©:  Mark Beisinger


Table #5

Te (3d5/2) Chemical State BEs from:  “Techdb.podzone.net” Website

 

XPS Spectra – Chemical Shift | Binding Energy
C (1s) BE = 284.6 eV

XPS(X線光電子分光法)スペクトル 化学状態 化学シフト ケミカルシフト

Element Level Compound B.E.(eV) min max
Te 3d5/2 CdTe 572.3 ±0.3 572.0 572.5
Te 3d5/2 Hg0.8Cd0.2Te 572.3 ±0.3 572.0 572.5
Te 3d5/2 Tellurides 572.5 ±0.3 572.2 572.8
Te 3d5/2 GeTe 572.8 ±0.3 572.5 573.0
Te 3d5/2 Te 573.0 ±0.3 572.7 573.3
Te 3d5/2 Ph2Te2 574.0 ±0.2 573.8 574.2
Te 3d5/2 TeO2 575.8 ±0.3 575.5 576.0
Te 3d5/2 Halides 576.3 ±0.6 575.7 576.8
Te 3d5/2 Br3TePh 576.6 ±0.3 576.3 576.9
Te 3d5/2 TeO3 576.7 ±0.3 576.4 576.9
Te 3d5/2 Te(OH)6 577.1 ±0.2 576.9 577.3

 Periodic Table 



 


Histograms of NIST BEs for Te (3d
5/2) BEs

Important Note:  NIST Database defines Adventitious Hydrocarbon C (1s) BE = 284.8 eV for all insulators.

Histogram indicates:  573.0 eV for Teo based on 20 literature BEs Histogram indicates:  576.1 eV for TeO2 based on 6 literature BEs

Histogram indicates:  572.6 eV for CdTe based on 10 literature BEs

Table #6


NIST Database of Te (3d5/2) Binding
Energies

NIST Standard Reference Database 20, Version 4.1

Data compiled and evaluated
by
Alexander V. Naumkin, Anna Kraut-Vass, Stephen W. Gaarenstroom, and Cedric J. Powell
©2012 copyright by the U.S. Secretary of Commerce on behalf of the United States of America. All rights reserved.

Important Note:  NIST Database defines Adventitious Hydrocarbon C (1s) BE = 284.8 eV for all insulators.

 

Element Spectral Line Formula Energy (eV) Reference
Te 3d5/2 (Ag2O)0.50(TeO2)0.10(P2O5)0.40 571.10  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.25(P2O5)0.25 571.20  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.35(P2O5)0.15 571.20  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.45(P2O5)0.05 571.20  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.30(P2O5)0.20 571.30  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.40(P2O5)0.10 571.40  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.15(P2O5)0.35 571.40  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.20(P2O5)0.30 571.40  Click
Te 3d5/2 ZnTe 571.50  Click
Te 3d5/2 (Ag2O)0.5(TeO2)0.5 571.50  Click
Te 3d5/2 PbTe 571.70  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.05(P2O5)0.45 571.90  Click
Te 3d5/2 PbTe 572.00  Click
Te 3d5/2 PbInTe 572.00  Click
Te 3d5/2 (Ag2O)0.3(TeO2)0.7 572.00  Click
Te 3d5/2 Te 572.10  Click
Te 3d5/2 Na2Te 572.20  Click
Te 3d5/2 PbTe 572.20  Click
Te 3d5/2 MnTe 572.20  Click
Te 3d5/2 GaMo4S4Te4 572.20  Click
Te 3d5/2 CdTe 572.26  Click
Te 3d5/2 CdTe 572.30  Click
Te 3d5/2 Cd0.2Hg0.8Te 572.30  Click
Te 3d5/2 SnTe 572.30  Click
Te 3d5/2 Pb0.98Mn0.02Te 572.30  Click
Te 3d5/2 Pb0.96Mn0.04Te 572.30  Click
Te 3d5/2 InTe 572.30  Click
Te 3d5/2 Ga2Te3 572.40  Click
Te 3d5/2 Pb0.92Mn0.08Te 572.40  Click
Te 3d5/2 In2Te3 572.40  Click
Te 3d5/2 CdTe 572.47  Click
Te 3d5/2 CdTe 572.47  Click
Te 3d5/2 Cs0.90Te 572.47  Click
Te 3d5/2 Cs2.6Te 572.48  Click
Te 3d5/2 CdTe 572.50  Click
Te 3d5/2 CdTe 572.50  Click
Te 3d5/2 GeTe3As2 572.50  Click
Te 3d5/2 Pb0.94Mn0.06Te 572.50  Click
Te 3d5/2 CdTe 572.52  Click
Te 3d5/2 Cs0.78Te 572.53  Click
Te 3d5/2 GeTeAs2S2 572.55  Click
Te 3d5/2 CdSe0.65Te0.35 572.60  Click
Te 3d5/2 CdTe 572.60  Click
Te 3d5/2 Nb3Te4 572.60  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.45(P2O5)0.05 572.60  Click
Te 3d5/2 CdTe 572.70  Click
Te 3d5/2 GeTe 572.70  Click
Te 3d5/2 Te 572.70  Click
Te 3d5/2 Te 572.70  Click
Te 3d5/2 Te 572.70  Click
Te 3d5/2 Cd0.65Zn0.35TeOx 572.70  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.40(P2O5)0.10 572.70  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.35(P2O5)0.15 572.70  Click
Te 3d5/2 Cs2.4Te 572.72  Click
Te 3d5/2 Cs2.69Te 572.72  Click
Te 3d5/2 GeTe2 572.75  Click
Te 3d5/2 NbTe4 572.80  Click
Te 3d5/2 Te/Si 572.80  Click
Te 3d5/2 Te/Si 572.80  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.25(P2O5)0.25 572.80  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.30(P2O5)0.20 572.80  Click
Te 3d5/2 Te 572.85  Click
Te 3d5/2 Te 572.85  Click
Te 3d5/2 CdTe 572.90  Click
Te 3d5/2 Te 572.90  Click
Te 3d5/2 Te 572.90  Click
Te 3d5/2 Te 572.90  Click
Te 3d5/2 Te 572.90  Click
Te 3d5/2 U2Te3 572.90  Click
Te 3d5/2 ZnTe 572.90  Click
Te 3d5/2 (Ag2O)0.5(TeO2)0.5 572.90  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.10(P2O5)0.40 572.90  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.20(P2O5)0.30 572.90  Click
Te 3d5/2 CdTe 572.98  Click
Te 3d5/2 Te 572.98  Click
Te 3d5/2 Te 572.99  Click
Te 3d5/2 Te 573.00  Click
Te 3d5/2 UTe3 573.00  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.15(P2O5)0.35 573.00  Click
Te 3d5/2 Te 573.05  Click
Te 3d5/2 Cs/Te 573.05  Click
Te 3d5/2 Te 573.10  Click
Te 3d5/2 Te 573.10  Click
Te 3d5/2 Te 573.20  Click
Te 3d5/2 [C26H24NOTe][BF4] 573.30  Click
Te 3d5/2 Te 573.40  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.05(P2O5)0.45 573.40  Click
Te 3d5/2 Te 573.50  Click
Te 3d5/2 Te 573.54  Click
Te 3d5/2 Te 573.54  Click
Te 3d5/2 C26H18Te2.C60.CS2 573.80  Click
Te 3d5/2 (Ag2O)0.1(TeO2)0.9 573.80  Click
Te 3d5/2 [Te2(C6H5)2] 573.90  Click
Te 3d5/2 C13H21Te 573.90  Click
Te 3d5/2 C26H40Te2 574.00  Click
Te 3d5/2 [Te(CH2P(C6H5)3)4]Cl4 574.10  Click
Te 3d5/2 [((C6H5)3P=CH2)4Te]Cl4 574.10  Click
Te 3d5/2 C14H17Te 574.10  Click
Te 3d5/2 [((C6H5)3P=CH2)2TeCl2]Cl2 574.20  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.40(P2O5)0.10 574.20  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.20(P2O5)0.30 574.20  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.30(P2O5)0.20 574.20  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.35(P2O5)0.15 574.20  Click
Te 3d5/2 Cs2.6Te 574.25  Click
Te 3d5/2 [TeCl(CH2P(C6H5)3)3]Cl3 574.30  Click
Te 3d5/2 Cs2.69Te 574.30  Click
Te 3d5/2 [((C6H5)3P=CH2)3TeCl]Cl3 574.30  Click
Te 3d5/2 [C21H24NTe][BF4] 574.30  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.45(P2O5)0.05 574.30  Click
Te 3d5/2 (Ag2O)0.5(TeO2)0.5 574.40  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.10(P2O5)0.40 574.40  Click
Te 3d5/2 [TeCl2(CH2P(C6H5)3)2]Cl2 574.50  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.15(P2O5)0.35 574.50  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.25(P2O5)0.25 574.60  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.05(P2O5)0.45 574.90  Click
Te 3d5/2 (Ag2O)0.3(TeO2)0.7 575.10  Click
Te 3d5/2 [TeI2(C2H5)2] 575.30  Click
Te 3d5/2 [TeI2(C6H5)2] 575.40  Click
Te 3d5/2 K2TeO3 575.50  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.45(P2O5)0.05 575.50  Click
Te 3d5/2 [TeI2(CH3)2] 575.60  Click
Te 3d5/2 TeO2 575.60  Click
Te 3d5/2 TeO2 575.60  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.40(P2O5)0.10 575.60  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.35(P2O5)0.15 575.70  Click
Te 3d5/2 [TeI3C6H5] 575.80  Click
Te 3d5/2 TeO2 575.80  Click
Te 3d5/2 TeO2 575.80  Click
Te 3d5/2 TeI4 575.80  Click
Te 3d5/2 [((C6H5)3P=CH2)4Te]Cl4 575.80  Click
Te 3d5/2 Cd0.65Zn0.35TeOx 575.90  Click
Te 3d5/2 [((C6H5)3P=CH2)3TeCl]Cl3 575.90  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.30(P2O5)0.20 575.90  Click
Te 3d5/2 [TeBr2(C6H5CH3)] 576.00  Click
Te 3d5/2 C14H17Br2OTe 576.00  Click
Te 3d5/2 (Ag2O)0.5(TeO2)0.5 576.00  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.25(P2O5)0.25 576.00  Click
Te 3d5/2 [Te(OOH)C6H4CH3] 576.10  Click
Te 3d5/2 TeO2 576.10  Click
Te 3d5/2 TeO2 576.10  Click
Te 3d5/2 TeO2 576.10  Click
Te 3d5/2 TeO2 576.10  Click
Te 3d5/2 Hg0.7Cd0.3TeOx 576.10  Click
Te 3d5/2 [TeBr2(C6H5)2] 576.20  Click
Te 3d5/2 [TeCl2(C6H5)2] 576.20  Click
Te 3d5/2 (Ag2O)0.1(TeO2)0.9 576.20  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.20(P2O5)0.30 576.20  Click
Te 3d5/2 TeO2 576.21  Click
Te 3d5/2 TeO2 576.21  Click
Te 3d5/2 [TeCl4((CH3)2NCSN(CH3)2)2] 576.30  Click
Te 3d5/2 CdTeO3 576.30  Click
Te 3d5/2 C14Cl2H17Te 576.30  Click
Te 3d5/2 TeO2 576.40  Click
Te 3d5/2 TeO2 576.40  Click
Te 3d5/2 C14Cl2H16O2Te 576.40  Click
Te 3d5/2 (Ag2O)0.3(TeO2)0.7 576.40  Click
Te 3d5/2 (NH4)2TeO4 576.50  Click
Te 3d5/2 TeO2 576.50  Click
Te 3d5/2 TeO2 576.50  Click
Te 3d5/2 [((C6H5)3P=CH2)2TeCl2]Cl2 576.50  Click
Te 3d5/2 [TeBr3(C4H9)] 576.60  Click
Te 3d5/2 [TeBr3C6H5] 576.60  Click
Te 3d5/2 TeO3 576.60  Click
Te 3d5/2 (MoO3)23.75(TeO2)5(V2O5)71.25 576.60  Click
Te 3d5/2 (MoO3)22.5(TeO2)10(V2O5)67.5 576.60  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.10(P2O5)0.40 576.60  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.15(P2O5)0.35 576.60  Click
Te 3d5/2 [TeCl3(C6H4OCH3)] 576.70  Click
Te 3d5/2 TeBr4 576.70  Click
Te 3d5/2 Na2TeO4 576.80  Click
Te 3d5/2 TeCl4 576.90  Click
Te 3d5/2 (NH4)2[TeCl6] 576.90  Click
Te 3d5/2 Te(OH)6 577.10  Click
Te 3d5/2 TeO3 577.30  Click
Te 3d5/2 (Ag2O)0.50(TeO2)0.05(P2O5)0.45 577.40  Click

 

 

Statistical Analysis of Binding Energies in NIST XPS Database of BEs