Characterizing the structure of aerobic granular sludge using ultra-high field magnetic resonance

Author:

Kirkland Catherine M.12,Krug Julia R.34,Vergeldt Frank J.4,van den Berg Lenno5,Velders Aldrik H.3,Seymour Joseph D.26,Codd Sarah L.7,Van As Henk4,de Kreuk Merle K.5

Affiliation:

1. Department of Civil Engineering, Montana State University, 205 Cobleigh, Bozeman, Montana, 59717, USA

2. Center for Biofilm Engineering, Montana State University, 366 Barnard, Bozeman, Montana, 59717, USA

3. Laboratory of BioNanoTechnology, Wageningen University and Research, Axis building, Bornse Weilanden 9, 6708 WG, Wageningen, The Netherlands

4. Laboratory of Biophysics and MAGNEtic Resonance Research FacilitY (MAGNEFY), Wageningen University and Research, Helix building, Stippeneng 4, 6708 WG, Wageningen, The Netherlands

5. Department of Water Management, Delft University of Technology, Stevinweg 1, 2628 CN, Delft, The Netherlands

6. Department of Chemical and Biological Engineering, Montana State University, 306 Cobleigh, Bozeman, Montana, 59717, USA

7. Department of Mechanical and Industrial Engineering, Montana State University, 220 Roberts, Bozeman, Montana, 59717, USA

Abstract

Abstract Despite aerobic granular sludge wastewater treatment plants operating around the world, our understanding of internal granule structure and its relation to treatment efficiency remains limited. This can be attributed in part to the drawbacks of time-consuming, labor-intensive, and invasive microscopy protocols which effectively restrict samples sizes and may introduce artefacts. Time-domain nuclear magnetic resonance (NMR) allows non-invasive measurements which describe internal structural features of opaque, complex materials like biofilms. NMR was used to image aerobic granules collected from five full-scale wastewater treatment plants in the Netherlands and United States, as well as laboratory granules and control beads. T1 and T2 relaxation-weighted images reveal heterogeneous structures that include high- and low-density biofilm regions, water-like voids, and solid-like inclusions. Channels larger than approximately 50 μm and connected to the bulk fluid were not visible. Both cluster and ring-like structures were observed with each granule source having a characteristic structural type. These structures, and their NMR relaxation behavior, were stable over several months of storage. These observations reveal the complex structures within aerobic granules from a range of sources and highlight the need for non-invasive characterization methods like NMR to be applied in the ongoing effort to correlate structure and function.

Funder

Directorate for Education and Human Resources

Nederlandse Organisatie voor Wetenschappelijk Onderzoek

Publisher

IWA Publishing

Subject

Water Science and Technology,Environmental Engineering

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