Vary attribute in XPS smoothly

Aug 6th, 2022
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How to Vary attribute in XPS files without hassle

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Our process is very easy: you upload your XPS file to our editor → it automatically transforms it to an editable format → you make all essential adjustments and professionally update it. You only need a couple of moments to get your work ready.

Five simple steps to Vary attribute in XPS with DocHub:

  1. Upload your file. We’ve made several upload options available: direct form dropping into an upload panel, importing it from popular cloud services or your device, or via external URLs.
  2. Edit your content. Once you open your XPS document in our editor, use our top toolbar to add text or visual content, highlight or whiteout data, draw, etc. Click the Manage Fields button to add fillable fields.
  3. Fill out and get approval for your form. Fill data into your document’s blank areas. If you need to approve your XPS file, click on the Signature Fields button above and assign fields for other parties to sign electronically.
  4. Share your file. Send it by email or choose another of the many ways you can forward your XPS document to other people. You can also fax, generate a signing request link, or a shareable public link for your form.
  5. Save your changes. Click the Download/Export button to save your documentation on your device, your cloud storage, or even your Google Classroom workspace.

Once all modifications are applied, you can turn your paperwork into a reusable template. You just need to go to our editor’s left-side Menu and click on Actions → Convert to Template. You’ll find your paperwork stored in a separate folder in your Dashboard, saving you time the next time you need the same form. Try DocHub today!

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How to Vary attribute in XPS

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Charles Zona (CZ): Hello, and welcome to another McCrone Group webinar. My name is Charles Zona, and today we are happy to welcome Doug Meier. Doug is going to talk to us about X-ray photoelectron spectroscopy, otherwise known as XPS. Before we get started I would like to give you a bit of Dougs background. Doug is a senior research scientist with McCrone Associates. He specializes in surface sensitive spectroscopies, such as Auger electron, X-ray photoelectron, infrared reflection absorption, thermal desorption, and low-energy electron diffraction. Doug was awarded the U.S. Department of Commerces Silver Medal for his work in the development of conductometric chemical microsensor array technology for the detection of chemical warfare agents. He also has over ten years of micro beam analysis experience prior to joining McCrone Associates. Doug will field questions from the audience immediately following todays presentation, and this webinar is being recorded and will be available on

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Chemical shift arises in the initial state from the displacement of the electronic charge from the atom towards its ligands, reducing the electrostatic potential at the atom. There is a final state shift due to the polarization of the ligand by the core on the central atom.
The greater the binding energy, the greater the attraction of that electron to the nucleus. i.e. peaks from electrons in 1s will have a greater energy than peaks representing electrons from 2s. Electrons in 2s will have greater energy than those in 2p.
XPS is a very powerful surface analysis technique in which chemical states can be determined in near surface regions. Near surface in XPS can be as localised as the top 12 nm of the surface, and chemical characterisation as a function of depth is achievable through an etching processes (using argon ion bombardment).
Shake-up satellites: distinct peaks a few eV below the main line. Shake-off satellites: broad feature at lower energy w.r.t. to main line. energy loss). n: e density, e: charge of e, m: mass of e electron.
Hydrogen has no core electrons and, therefore, coreelectron XPS is impossible. The H 1s electrons are valence electrons and as such participate in chemical bonding. Any signal from hydrogen would overlap with signals from excitation of valence electrons from other surface atoms.
The shifts in the XPS peak is related to its oxidation state and higher shift in binding energy corresponds to higher oxidation state. Some times more shift with noise peak is related to the satellite peak or shake up and it is a case for only some metal or its oxide for example Ni or NiO.
The chemical shift in the ESCA spectrum or equivalently in the X-ray spectra is caused by changes in the electron binding energies. Therefore, we shall here consider different ways of calculating the electron binding energy of an atom or a molecule methods that can also be used to evaluate chemical shifts.
The binding energies of the numerous photoelectrons emitted from a surface sample are used as a fingerprint to identify elements present. Chemical shifts in XPS spectra are observed when an element enters a different bound state, which results in changes in the binding energy of core electrons.

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