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Yusuf Hamied Department of Chemistry

 

Materials Chemistry Group


Functional (pharmaceutical) molecular solids


The design of functional molecular materials has advanced tremendously through cocrystallisation: the assembly of multiple chemical species in the same crystal lattice. Underlying cocrystals formation are rules that guide molecular recognition and self-assembly. We are deciphering this "intermolecular language" by combining experimental work with data mining and molecular modelling. Our particular interest is constructing functional materials through weak supramolecular interactions, such as hydrogen and halogen bonds.



Surface dynamics of molecular solids


Properties of crystalline solids are usually measured as a bulk property, and the results interpreted in terms of crystal structure. However, such a description does not adequately describe the surface of molecular crystals, at which the distribution of forces on a molecule is non-symmetrical, resulting in high mobility and reactivity. The atomic force microscope (AFM) is a unique tool for studying such surface-related dynamics.


 


Teaching


 


Current teaching includes a third year undergraduate lecture course on the Chemistry of Materials.  The course examines a range of organic, metal-organic and inorganic materials and demonstrates their varied uses. We will, in particular, identify important structural features relevant to such areas as the pharmaceutical and petrochemical industries and to naturally occurring biomaterials such as bone. The underlying chemistry and properties will be shown to be often sensitive to the way that the constituent atoms and molecules are packed together. This aspect of solid state control will be examined in some detail.



The development and design of new materials, incorporating structural characteristics of inorganic solids and functionality of organic molecules will be described.



The control of crystal morphology is important in many applications, and this will be discussed in the context of templating crystal growth, both in Nature and in the laboratory, and of crystal engineering. Numerous important materials, including many found in Nature, are in fact inorganic-organic composites, and these will also be discussed in detail.



From paracetamol to petrol to proteins to bone – the importance of the Chemistry of Materials will be explored in these lectures.


Also, as part of the Cambridge fourth year program I teach a course on Organic Solids that builds on the lecture course Chemistry of Materials given in Part II (although it is not required that students have taken this course). The first six lectures of the course, given by me, will cover aspects of crystal chemistry, structure and reactivity of organic solids. Examples of lattice controlled reactions will be given, including photochemical and thermal. Particular emphasis will be placed on how solid state properties impact on the development of drug products in the pharmaceutical industry. Experimental approaches to understanding molecular packing will be described and will lead into the second part of the course, given by my colleague, Dr Graeme Day.

Publications

Recent Advances in Understanding the Mechanism of Cocrystal Formation via Grinding
T Friscic, W Jones
– Crystal Growth & Design
(2009)
9,
1621
Testing the sensitivity of terahertz spectroscopy to changes in molecular and supramolecular structure: A study of structurally similar cocrystal
EPJ Parrott, JA Zeitler, T Friscic, M Pepper, W Jones, GM Day, LF Gladden
– Crystal Growth & Design
(2009)
9,
1452
Evidence for the formation of anhydrous zinc acetate and acetic anhydride during the thermal degradation of zinc hydroxy acetate, Zn5(OH)8(CH3CO2)2·4H2O to ZnO
T Biswick, W Jones, A Pacula, E Serwicka, J Podobinski
– Solid State Sciences
(2009)
11,
330
The role of solvent in mechanochemical and sonochemical cocrystal formation: A solubility-based approach for predicting cocrystallisation outcome
T Friscic, SL Childs, SAA Rizvi, W Jones
– CrystEngComm
(2009)
11,
418
Control and interconversion of cocrystal stoichiometry in grinding: stepwise mechanism for the formation of a hydrogen-bonded cocrystal
S Karki, T Friscic, W Jones
– CrystEngComm
(2009)
11,
470
The crystal structures of three novel lutidinium pamoate salts
DA Haynes, ZF Weng, W Jones, WDS Motherwell
– CrystEngComm
(2009)
11,
254
Probing solids through THz spectroscopy: Differentiation of chiral and racemic forms of isostructural and non-isostructural cocrystals
EPJ Parrott, JA Zeitler, T Friscic, M Pepper, W Jones, GM Day, LF Gladden
– 2008 33RD INTERNATIONAL CONFERENCE ON INFRARED, MILLIMETER AND TERAHERTZ WAVES, VOLS 1 AND 2
(2008)
1
Using terahertz time-domain-spectroscopy to follow the kinetics and mechanism of cocrystal formation
EPJ Parrott, JA Zeitler, T Friscic, GM Day, M Pepper, W Jones, LF Gladden
– 2008 33rd International Conference on Infrared, Millimeter and Terahertz Waves
(2008)
254,
653
Structural Equivalence of Br and I Halogen Bonds: A Route to Isostructural Materials with Controllable Properties
D Cincic, T Friscic, W Jones
– Chemistry of Materials
(2008)
20,
6623
Molecular Polarization Effects on the Relative Energies of the Real and Putative Crystal Structures of Valine.
TG Cooper, KE Hejczyk, W Jones, GM Day
– Journal of Chemical Theory and Computation
(2008)
4,
1795
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Research Group

Research Interest Groups

Telephone number

01223 336468

Email address

wj10@cam.ac.uk